<?xml version="1.0"?>
<rss version="2.0"
  xmlns:dc="http://purl.org/dc/elements/1.1/"
  xmlns:sy="http://purl.org/rss/1.0/modules/syndication/"
  xmlns:admin="http://webns.net/mvcb/"
  xmlns:rdf="http://www.w3.org/1999/02/22-rdf-syntax-ns#"
  xmlns:content="http://purl.org/rss/1.0/modules/content/">

  <channel>
        <title>Custom Feed &#45; The BioLogos Forum</title>
    <link>http://biologos.org/resources/find/Blog/sort&#45;by&#45;Newest/sort&#45;by&#45;Newest/Creation Care,History of Life?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
    <description>This is a custom feed of BioLogos resources. Make a new feed at http://biologos.org/resources/find</description>
    <dc:language>en</dc:language>
    <dc:rights>Copyright 2013</dc:rights>
    <dc:date>2013-05-23T10:30:59-08:00</dc:date>    
    
    

            
            
        
      <item>
        <title>Series: Evolution Basics</title>
        <link>http://biologos.org/blog/series/evolution&#45;basics?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/series/evolution&#45;basics?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>Written by BioLogos Fellow of Biology Dennis Venema, this series of posts is intended as a basic introduction to the science of evolution for non&#45;specialists.</description>
        <content:encoded><![CDATA[<p>Regular readers of the BioLogos Forum will know that over the past few years I have written extensively on various evidences for evolution, often with a focus on genetics evidence. Other posts have focused on scientific arguments put forward from groups such as the Intelligent Design Movement (IDM), or the Old Earth Creationist organization <em>Reasons to Believe</em> (RTB), with a view to showing why I find those arguments unpersuasive. Often these articles are deeply technical—to the point where my friends (perhaps on Facebook, perhaps in a conversation over coffee in the church foyer on Sunday) would comment that, as interesting as it looked, it was just over their heads. Now, these friends are intelligent people, and some are even interested in evolution—but they’re not folks who read extensively on the topic. Nor do they follow the IDM or RTB—they’re just average folks who would like to learn more, but need to start at the beginning and work up slowly – not jump in halfway through, with technical terms and jargon flying around. They need a <em>context</em> for the discussion. They need to explore the basics, &nbsp;first, before building on that understanding to explore the finer details.</p>

<p>So, I’ve decided to try a slightly different approach for the next while—one that has these sorts of folks in mind. From time to time, you can still expect those more in-depth, technical articles, or perhaps a discussion of some new research that makes the popular press, or even an analysis of some new argument from the IDM or RTB. These will be breaks from the new routine, however. For the most part, we’re going to stick to the basics, much like you would if you took an introductory evolution course at a university. Don’t worry, though: this course doesn’t have any prerequisites! All that’s needed is a willingness to learn.</p>

<h3>What you can expect</h3>

<p>The goal of this course is straightforward: to provide evangelical Christians with a step-by-step introduction to the science of evolutionary biology.&nbsp; This will provide benefits beyond just the joy of learning more about God’s wonderful creation. An understanding of the basic science of evolution is of great benefit for reflecting on its theological implications, since this reflection can then be done from a scientifically-informed perspective. From time to time we might comment briefly on some issues of theological interest (and suggest resources for those looking to explore those issues further), but for the most part, we’re going to focus on the science. For folks interested in the interaction between science and Christianity, I heartily recommend <a href="http://biologos.org/blog/science-and-bible">Ted Davis’ recent series</a> as a fabulous introduction to the topic.</p>

<p>You can also expect a slow, patient pace. Since this course is intended for folks with little or no background in biology, we’re going to take our time to make sure no one gets left behind. This might be frustrating to folks who already know a fair bit about evolution. Hopefully even more knowledgeable readers will learn some new and interesting details along the way—but the goal will primarily be to help folks who are less well versed in evolution increase their understanding.</p>

<p>You can also expect a survey of many different areas that have some bearing on evolution. We’ll examine geology, paleontology, biogeography, genetics, and a host of other topics in order to provide a “big picture” overview. This broad-brush approach means that any given individual post will not necessarily be “convincing” to folks who have doubts about evolution. Think about assembling a large jigsaw puzzle: placing any individual piece, on its own, doesn’t convincingly demonstrate what the overall picture will show. This course will be like that. Each topic we cover will put a few pieces in place here and there, slowly building towards the final overall picture.</p>

<p>Since evolution is an active science, this process will also highlight where there are “missing pieces” that are still being sought by scientists. All of this is well and good, since the purpose of this course is not so much to <em>convince</em> anyone of the validity of evolutionary theory, but rather to <em>inform</em> readers about the nature and scope of evolution as a scientific theory in the present day. My goal is to provide readers with a basic understanding of what evolution is and how it works. Given that as the primary goal, if one finds the scope of the evidence ultimately convincing (or not) is somewhat beside the point. The intent here is to provide readers with information they can use to make their own, informed decision.</p>

<h3>How you can help</h3>

<p>First and foremost, you can help by spreading the word about this series to folks you think would be interested in learning more about evolution in a non-threatening environment. Secondly, you can help me by asking questions in the comments. One of the challenges of being a specialist is having the ability to put oneself in the shoes of someone just starting out. What might seem obvious to me may not seem obvious to you, and I hope you’ll feel that no question is too basic or too simplistic. If you’re wondering about something, it’s almost guaranteed that other folks are, too! So, please don’t be shy. I’ll do my best to answer questions in the comments, though I hope that some of our more skilled commenters will (respectfully!) help out here, as well. Finally, you can help by letting me know what broader areas of evolution you find confusing. I have my own ideas about what areas of evolution are commonly misunderstood, but I’d love to hear from readers about what areas they find difficult to understand. I’ll use this input to shape the topics I will cover as we go forward.</p>

<h3>Getting started</h3>

<p>In the next post in this course, we’ll dive into the course content by introducing two key areas: how scientific theories work in general, and how evolution in particular works as the current organizing theory of modern biology.&nbsp;</p>
]]></content:encoded>
        <pubDate>Fri, 19 Apr 13 08:25:59 -0700</pubDate>
        <dc:creator>Dennis Venema</dc:creator>
        <!--<dc:date>Apr 19, 2013 08:25</dc:date>-->
      </item>
            <item>
        <title>Series: Biological Evolution: What Makes it Good Science?</title>
        <link>http://biologos.org/blog/series/biological&#45;evolution&#45;what&#45;makes&#45;it&#45;good&#45;science&#45;series?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/series/biological&#45;evolution&#45;what&#45;makes&#45;it&#45;good&#45;science&#45;series?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>Is the contemporary theory of evolution an example of good science? Biologist Michael Buratovich explore this question in a well&#45;researched two part essay.</description>
        <content:encoded><![CDATA[<p>Is the contemporary theory of evolution an example of good science?&nbsp; The answer to this question completely depends on how you define “science,” and what you think makes science “good.”&nbsp;</p>

<p>Good science has an addiction to theories,<sup>1</sup>&nbsp;and for science to be good science, it must deal with good scientific theories.&nbsp; What constitutes a good scientific theory?&nbsp; That is a very involved question, but a user’s view of good scientific theories looks something like this:</p>

<ol>
<li>&nbsp;A scientific theory is not a guess or suspicion.&nbsp; For example, “I have a theory about who shot President Kennedy,” reflects the colloquial meaning of the word “theory,” and not the meaning conveyed by scientists when they use the word “theory.” &nbsp;</li>
<li>Scientific theories are convincing explanatory frameworks that efficiently integrate a large body of evidence about the world.&nbsp; Good scientific theories have the capacity to make sense of a wide range of data that made less sense before the introduction of the theory.&nbsp;</li>
<li>In order to be called a scientific theory, it must have been successfully tested and re-tested many times.<sup>2</sup></li>
<li>A scientific theory must be falsifiable in order to be truly scientific.&nbsp; The theory has to live constantly at risk from new data.<sup>3&nbsp;</sup></li>
<li>A theory must have predictive power.<sup>4</sup>&nbsp; Good theories allow scientists to make predictions based on the theory that, when tested, turn out to be at least roughly correct.&nbsp;</li>
</ol>

<p>These are not the only characteristics of a scientific theory, but they probably represent the most important features for practitioners of science.&nbsp;</p>

<p>If we hold contemporary evolutionary theory to these standards, how well does it do?&nbsp; Since the inception of evolutionary theory by Charles Darwin in 1859 with the publication of <em>On the Origin of Species</em>, there are four characteristics of evolutionary theory that have endured 150 years of further research:</p>

<ol>
<li>Living species are descendants of other species that lived in the past.</li>
<li>These past species lived in populations that underwent gradual transformation so that the individuals in these populations changed their appearance, behaviors, metabolisms, and life histories over long spans of time.<sup>5</sup></li>
<li>New forms of life arose by means of a process called speciation in which one lineage splits into two distinct lineages.&nbsp; This continual splitting of organismal lineages leads to a nested genealogy of species.&nbsp; This nested genealogy forms a veritable tree of life, whose root represents the first species to arise and whose twigs represent the millions of species living today.&nbsp; If you trace back any pair of twigs from the modern species you will find that their histories merge at some node on the tree where the two species share a common ancestor.<sup>6</sup>&nbsp;</li>
<li>This process of biological change that takes place throughout the advance of geologic time, or evolution, occurs by means of variation in organisms (which we know today is due to genetic mutations) that is acted on by either random genetic drift or natural selection. Those individuals with variations better suited to the current environment leave more offspring, thus changing the average appearance of the population over time and making it a better fit to the environment. This improving fit between organisms and their environment gives the appearance of organisms having been well designed for their milieu.<sup>7</sup>&nbsp;</li>
</ol>

<p>What is the evidence for these aspects of evolutionary theory?&nbsp; The evidence is actually immense, but I will restrict this discussion to just a few items.&nbsp;</p>

<p>First there is the fossil record. If life results from a natural process such as biological evolution, then we should observe a progression of fossil organisms that proceed from relatively simple, single-celled organisms in the oldest rocks to more complex, multicellular organisms in younger rocks. When paleontologists examine the geologic column, they perceive that some of the oldest and deepest layers of the geologic column contain fossils of microorganisms, and then marine invertebrates in younger layers above those,<sup>8</sup>&nbsp;and then much later and higher up in the geologic column fish appear, followed later and higher still by amphibians, and then by reptiles, mammals, and birds.<sup>9</sup>&nbsp; Thus, the general presentation of the fossil record in the rock record comports exactly with what the theory of evolution predicts.&nbsp;</p>

<p>However, the fossil story gets even better, because scientists can trace evolutionary trends throughout the fossil record.&nbsp; For example, horses get bigger, fuse their leg bones and toes into a single bone with a thick hoof and grow the thickness of their tooth enamel;<sup>10</sup>&nbsp;Cenozoic brachiopod shells get narrower, decrease their rib numbers and beak angle;<sup>11</sup>&nbsp;diatoms get bigger;<sup>12</sup>&nbsp;and primate fossils reduce the size of their teeth and expand the size of their brains.<sup>13</sup>&nbsp;</p>

<p>Additionally, Darwin predicted that there should be organisms preserved in the fossil record that possess features found in two different types of creatures. Such organisms are “transitional forms” that bridge the gap between different types of organisms.<sup>14</sup>&nbsp;However, the fossil record of Darwin’s time provided little evidence of such transitional forms.<sup>15</sup>&nbsp;Therefore, Darwin gambled that future paleontological research would provide sufficient evidence to corroborate his theory. How did this gamble turn out? Since Darwin’s time, paleontologists have discovered transitional fossils that are part fish and tetrapod,<sup>16</sup>&nbsp;part amphibian and part reptile,<sup>17</sup>&nbsp;part dinosaur and part bird,<sup>18</sup>&nbsp;and part reptile and part mammal.<sup>19</sup>&nbsp;Once again, we would predict such paleontological trends and the existence of such transitional fossils if life came about through a process of organic evolution. Clearly paleontological research since Darwin’s time has powerfully vindicated his theory.&nbsp;</p>

<p class="intro">Please join us for part two of this post tomorrow, where we will discuss how signs of evolution can be detected in organisms living today, and how evidence from multifarious scientific fields—not just biology and paleontology—have bolstered the theory of evolution and added to our understanding of how natural selection works.</p>

<h3>Notes</h3>

<p class="date">1. Ratzsch, Del. <em>The Battle of Beginnings: Why Neither Side Is Winning the Creation-Evolution Debate.</em> Downer’s Grove, WI: Intervarsity Press, 1996. pp. 104–119.&nbsp;<br />
2.&nbsp;Kitcher, Philip. <em>Abusing Science: The Case Against Creationism</em>. Cambridge, MA: MIT Press, 1983.&nbsp;pp. 45–54.<br />
3.&nbsp;Ibid, 42–48.&nbsp; .<br />
4.&nbsp;Ratzsch, Del. <em>Science and Its Limits: The Natural Sciences in Christian Perspective</em>. Downer’s Grove, WI: Intervarsity Press, 2000. pp.&nbsp;21–24.&nbsp;<br />
5.&nbsp;Hall, Brian K., and Benedikt Hallgrimsson. <em>Strickberger’s Evolution</em>. 5th ed. Burlington, MA: Jones and Bartlett, 2013. pp. 19–68.&nbsp;<br />
6.&nbsp;Kitcher, Philip. <em>Living With Darwin: Evolution, Design, and the Future of Faith</em>. New York: Oxford University Press, 2009. pp. 43–71.&nbsp;<br />
7.&nbsp;Futuyma, Douglas J. <em>Evolution. 3rd ed.</em> Sundbury, MA: Sinauer Associates, 2013. pp. 281–343.&nbsp;<br />
8.&nbsp;Valentine, James W. <em>On the Origin of Phyla</em>. Chicago: University of Chicago Press, 2006. pp. 429–464.&nbsp;<br />
9.&nbsp;Carroll, Robert L. <em>Vertebrate Paleontology and Evolution</em>. New York: W. H. Freeman and Company, 1990.&nbsp;<br />
10.&nbsp;MacFadden, “Horses, the Fossil Record, and Evolution,” 131–158; McFadden, Bruce J. “Fossil Horses from "Eohippus" (Hyracotherium) to Equus: Scaling, Cope's Law, and the Evolution of Body Size.” <em>Paleobiology</em> 12, no. 4 (1986): 355–69.; Prothero, Donald R., and R.M. Schoch, eds. <em>The Evolution of Perissodactyls</em>. New York: Clarendon Press, 1989.&nbsp;; McFadden, Bruce J. <em>Fossil Horses. Systematics, Paleobiology, and Evolution of the Family Equidae</em>. Cambridge, Cambridge University Press, 1993.&nbsp;<br />
11.&nbsp;McNamara, Kenneth J. <a href="ftp://ftp.esc.cam.ac.uk/pub/kmcn07/KEN%27S%20PAPERS/ELS%20Evolutionary%20Trends.pdf">“Evolutionary Trends.”</a> In <em>Encyclopedia of Life Sciences</em> (New York: Macmillan Publishers Ltd, 2001), pp. 1–7.&nbsp;<br />
12.&nbsp;Litchman, E., C. A. Klausmeier, and K. Yoshiyama. “Contrasting Size Evolution in Marine and Freshwater Diatoms.” <em>Proceedings of the National Academy of Sciences USA</em> 106, no. 8 (2009): 2665–2670.<br />
13.&nbsp;Tattersall, Ian. <em>The Fossil Trail: How We Know What We Think We Know About Human Evolution</em>. New York: Oxford University Press, 2008. pp.&nbsp;89–198.&nbsp;<br />
14.&nbsp;Darwin, Charles. <em>On the Origin of Species by Means of Natural Selection or the Preservation of Favoured Races in the Struggle for Life</em>. London: Penguin Books, 1985. p.&nbsp;292.<br />
15.&nbsp;Hunt, Gene. “Evolution in Fossil Lineages: Paleontology and The Origin of Species.” <em>Supplement American Naturalist</em> 176 (2010): S61–S76.&nbsp;<br />
16.&nbsp;Clack, Jennifer A. <em>Gaining Ground: The Origin and Evolution of Tetrapods</em>. Bloomington, IN: Indiana University Press, 2002; Daeschler, Edward B., Neil H. Shubin, and Farish A. Jenkins, Jr. “A Devonian Tetrapod-Like Fish and the Evolution of the Tetrapod Body Plan,” <em>Nature</em> 440, no. 7085 (2006): 757–63; Shubin, Neil H., Edward B. Daeschler, and Farish A. Jenkins, Jr. “The Pectoral Fin of Tiktaalik roasae and the Origin of the Tetrapod Limb.” <em>Nature</em> 440, no. 7085 (2006).): 764–71; Downs, Jason P., Edward B. Daeschler, Farish A. Jenkins, and Neil H. Shubin. "The Cranial Endoskeleton of Tiktaalik roseae." <em>Nature</em> 455, no. 7215 (2008): 925–9.&nbsp;<br />
17. Carroll, Robert L. <em>Vertebrate Paleontology and Evolution</em>. New York: W. H. Freeman and Company, 1990. pp.&nbsp;156–216.&nbsp;<br />
18.&nbsp;Shipman, Pat. <em>Taking Wing: Archaeopteryx and the Evolution of Bird Flight</em>. New York: Touchstone, 1998. pp. 169–244.&nbsp;&nbsp;<br />
19.&nbsp;Prothero, Donald R. <em>Evolution: What the Fossils Say and Why It Matters</em>. New York: Columbia University Press, 2007. pp.&nbsp;271–297.&nbsp;</p>
]]></content:encoded>
        <pubDate>Tue, 16 Apr 13 08:00:46 -0700</pubDate>
        <dc:creator>Michael Buratovich</dc:creator>
        <!--<dc:date>Apr 16, 2013 08:00</dc:date>-->
      </item>
            <item>
        <title>Where are the Transitional Fossils?</title>
        <link>http://biologos.org/blog/where&#45;are&#45;the&#45;transitional&#45;fossils?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/where&#45;are&#45;the&#45;transitional&#45;fossils?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>A common argument leveled against the theory of evolution is that scientists have not been able to produce transitional fossils that show the change of one species into another.  In this podcast, we address a common misconception about what transitional fossils actually are.</description>
        <content:encoded><![CDATA[<p align="center"><iframe src="http://player.vimeo.com/video/31875051?title=0&amp;byline=0&amp;portrait=0" width="570" height="428" frameborder="0" webkitAllowFullScreen allowFullScreen></iframe></p>

<p>A common argument leveled against the theory of evolution is that scientists have not been able to produce the expected transitional fossils that show the change of one species into another. If evolution were true, wouldn’t there be instances of clear intermediary species, like, for example, a species that was half whale and half hippo to show the transition between those two? In this BioLogos podcast, Kelsey Luoma addresses this misconception about what a transitional fossil actually is. Rather than a mix between two related species, transitional fossils point back to the common ancestors that modern species share. The fact is that the number of transitional species is massive and it grows with each passing year.  Given the rarity with which organisms are actually fossilized, the amazing thing is actually the completeness of the fossil record, not its incompleteness.  The transitional species story strongly supports, and certainly does not disprove, evolutionary theory. <sup>1</sup></p>

<p class="date">1. To hear the full audio clips which have been referenced go to:</p>
<ul><li><a href="http://www.youtube.com/watch?v=X6EmOQLf25s&feature=BFa&list=PLACF41F3DDBCA4565&lf=results_video&noredirect=1" target="_blank">Rational Response Debate with Kirk Cameron (from Way of the Masters)</a></li>
<li><a href="http://www.youtube.com/watch?v=FN9wyn9xVko&feature=related" target="_blank">Behind the Scenes with Dr. Neil Shubin (from Cincinnati Museum Center)</a></li>
<li><a href="http://www.youtube.com/watch?v=fVNXXLLUYFM' target="_blank">Mark Norell Publishes New Archaeopteryx Findings (from American Museum of Natural Sciences)</a></li>
<li><a href="http://www.youtube.com/watch?v=VmtDGjfMajM" target="_blank">Texas A&M Professor Discusses Findings of Autralopithecus Sediba and its Relationship to Humans (from Texas A&M University)</a></li>
<li>Intro/outro music composed by Martin Minor (<a href="http://www.looperman.com/users/profile/159051" target="_blank">Minor2Go</a>).</li> </ul> </p>

<p><strong>An audio only version of the podcast can be downloaded <a href="http://biologos.org/uploads/resources/fossil_podcast_final.mp3" target="_blank">here</a>.</strong></p>
]]></content:encoded>
        <pubDate>Fri, 01 Feb 13 08:57:28 -0800</pubDate>
        <dc:creator>Kelsey Luoma</dc:creator>
        <!--<dc:date>Feb 01, 2013 08:57</dc:date>-->
      </item>
            <item>
        <title>Series: Harmonizing Science, Ethics, and Praxis</title>
        <link>http://biologos.org/blog/series/harmonizing&#45;science&#45;ethics&#45;and&#45;praxis?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/series/harmonizing&#45;science&#45;ethics&#45;and&#45;praxis?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>In this three&#45;part series, Cal DeWitt offers insights and examples of why science and ethics must work together to help us make informed, practical decisions within our society.  DeWitt’s science&#45;ethics&#45;praxis model provides a framework by which we can live more effectively as God’s stewards.</description>
        <content:encoded><![CDATA[<h3>The Science-Ethics-Praxis Triad</h3>

<p>Today, as I write, I am no longer in the desert of southern California, nor in the beech-maple forest of New Hampshire, but on a glacial drumlin in Waubesa Wetlands—a large marsh four miles south of Madison, Wisconsin. Here Ruth and I have our home, and here I study creatures whose watery habitats my neighbors and I have worked to save from eventual destruction. While my desert study site now is covered by a city where people live alone in the land—absent the desert creatures—my wetland study site remains occupied by all kinds of native plants and animals. Embracing it is the Town of Dunn, whose land stewardship plan helps people understand, serve, and maintain this and the other ecosystems. Our town stewardship plan encourages restoration of the landscape, protects agricultural lands, and strives to transmit an intergenerational heritage of secure and wholesome homes, livelihoods, and habitats for the animals, plants, and people that live here. We live largely in harmony and accord. </p>

<p>House-building on slabs poured onto desert sands first alerted me to the question of praxis, the third point on the napkin. But it was later, in my work as organizer of the Waubesa Wetlands Scientific and Agricultural Preserve, and as supervisor and later as chair of the Town of Dunn, that I came to realize that science and ethics do no earthly good unless put into practice. In serving my town, I came to apply what I had learned in the desert: praxis uninformed by science and ethics usually creates more problems than are solved.</p>

<p>“How do you put it all together?” those students in New Hampshire wanted to know. For me, it was building a framework for stewardship that simultaneously considered the questions “How does the world work?” “What is right?” and “What then must we do?” This science-ethics-praxis triad is a framework for living, for learning, for teaching, and most importantly for acting. It is a framework for stewardship.</p>

<p>In order to live and act rightly in the world, we need to know how the world works. We need to know how the systems that sustain us work, and how we interact with them. Without such knowledge we could drown in a flash flood, have our homes undercut by desert winds, cross the street in the path of an oncoming car, or get sick from consuming foods with toxic ingredients. As human beings develop more and more of the world, and as the reach of human actions extends regionally and globally, our knowledge must increase accordingly. This knowledge is not limited to what we acquire from a formal education; it also includes the knowledge we gain from family and friends, and from experience and experiment. In order to live and act rightly in the world, we need to know how the world works.</p>

<p>In order to live and act rightly in the world, we need to know what we ought to do. A century ago, this question was addressed in many colleges across America in a course for graduating seniors on moral philosophy. The purpose of this course was to convict students that they should apply their knowledge for the pursuit of good instead of pursuing self at others’ expense. At my university, this aspect of college education is expressed in a quotation from Abraham Lincoln carved in stone on a bench behind Lincoln’s statue at the top of Bascom Hill: “Let us have faith that right makes might, and in that faith, dare to do our duty.” The question “What is right?” is represented by the ethics corner of our triad. Moving directly from the Science corner to the praxis corner, or from the ethics corner to the praxis corner, proves problematic, even disastrous. Consider the result of going from knowledge of nuclear fission (science) directly to producing and dropping an atomic bomb (praxis), or moving from the belief that death is bad (ethics) to removing dead wood from forests (praxis); both are examples of these disastrous shortcuts.</p>

<p class="caption-left"><img src="http://biologos.org/uploads/static-content/DeWitt_Cover_thumb.jpg" alt="" height="270" width="200"  /></p>

<p>But knowing the science and observing the ethics of this stewardship framework does absolutely no good if it is not put into practice—placed into service. By themselves, the very best science and the most substantial ethics are no substitutes for action. We need to act appropriately and deliberately in the light of scientific and ethical knowledge. Praxis by itself, without being grounded in science and ethics, results in mere activism—activism that is unlikely to do good and that may produce harm. All three corners of the triad are essential—but not by themselves. Taken together and working interactively, they provide a framework for stewardship.</p>

<p>But will these three operate in dynamic interaction? Will they interact in ways that preserve and achieve the integrity of human life and the environment? The answer depends on what we know and understand about ourselves and the world (science), what we believe we should do (ethics), and what we in fact do, and how we respond to our successes and failures (praxis). It depends on our will, our motivation, our determination, and our dedication to strive for a harmonious world of creatures before their Creator. What might make us strive for such a world?</p>

<p class="intro">Part 3 explores the challenge of translating ideals into concrete actions.</p>
]]></content:encoded>
        <pubDate>Wed, 09 Jan 13 06:00:09 -0800</pubDate>
        <dc:creator>Calvin DeWitt</dc:creator>
        <!--<dc:date>Jan 09, 2013 06:00</dc:date>-->
      </item>
            <item>
        <title>Series: To Serve and Preserve—Genesis 2 and the Human Calling</title>
        <link>http://biologos.org/blog/series/to&#45;serve&#45;and&#45;preservegenesis&#45;2&#45;and&#45;the&#45;human&#45;calling?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/series/to&#45;serve&#45;and&#45;preservegenesis&#45;2&#45;and&#45;the&#45;human&#45;calling?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>In this series, David Buller pays careful attention to the original language and cultural context of Genesis 2, revealing that our responsibility to care for creation is a sacred task given to us by God, not merely a modern secular activity.  By taking Scripture seriously, we learn that we have a God&#45;given mandate to be diligent stewards of His creation.</description>
        <content:encoded><![CDATA[<p>The Bible provides us with several beautiful, theologically rich accounts of creation – in Genesis 1 and 2, but also in the Psalms and Job as well. If I had to pick a favorite from these passages, I think I’d choose Genesis 2, which tells the story of creation by zeroing in on the creation of humanity and a garden somewhere “in the East.” This chapter is packed with theological truths, yet we unfortunately often miss them; we may think of this chapter as less significant than Genesis 1, or merely as a setup for Genesis 3. At the same time, our curiosity about scientific matters (and blindness to symbolic language) might predispose us to skip right over the theological truths that this passage teaches. But if we approach Genesis 2 on its own terms, what might we learn from it?</p>

<p>A careful study of this chapter is important because it gives us a beautiful picture of the proper relationships we should have with God, the natural world, and each other. Numerous posts could be written on each of these relationships, but in this post I’d like to focus on how Genesis 2 describes our relationship to the rest of creation. These relationships are given deeper significance when we recognize that the garden is being described as a temple-like “sacred space,” not just an ordinary garden. There are numerous clues in the passage that this is the case. John Walton writes that the Garden/temple parallels “are givens that are simply assumed by the author and audience”<sup> 1</sup> of Genesis, but we completely miss them if we take fail to read the text the way the ancient author and audience would have.</p>

<h3>Temples and Gardens</h3>

<p>In the Ancient Near East (ANE), all sacred space was conceived of as something like a temple; it was a place where humans would serve God and experience their closest access to Him.  Thus in ANE cultures, a temple complex was seen as being the apex and a microcosm of creation and the earthly abode of the god(s). Descriptions of temples often pictured a river flowing from under the temple and flowing out through an adjacent garden, symbolizing the fertile extravagance of the divine provision. A temple garden would be no mere backyard vegetable patch, but rather an elaborate, beautifully landscaped botanical park.</p>

<p>The same temple/river picture can be seen in the description of the eschatological temple in Ezekiel (ch. 47) and Revelation (chs. 21-22, where the final temple is God Himself). Sound familiar? In Genesis 2 we also have a river flowing “from Eden [‘Abundance’] to water the garden” (v. 10).<sup>2</sup> Not only is the Garden filled with “every beautiful tree with edible fruit” (v. 9), but the area itself is rich with gold, resins, and gemstones (sometimes translated “bdellium and onyx”), the same materials later used to decorate Israel’s tabernacle, temple, and priestly garments. Furthermore, many scholars are convinced that the design of temple’s Menorah (candlestick) deliberately echoes the Garden’s Tree of Life, and some also think that the Ark of the Covenant in the temple parallels the Tree of the Knowledge of Good and Evil.<sup>3</sup></p>

<h3>Made for Sacred Service</h3>

<p>As inhabitants of this temple-garden, it comes as no surprise that Adam and Eve enjoyed a special closeness to God’s presence (Gen. 3:8 pictures God taking an evening walk through the Garden). But as inhabitants of the Garden, they had special responsibilities as well; they were told “to farm it and take care of it” (v. 15). The two Hebrew words used here have a broader range of meaning than their English translations suggest. As John Walton writes, the broader meaning of the word here translated “to farm” (particularly when used in a sacred context) “is often connected to religious service deemed as worship (e.g., Ex. 3:12) or of priestly functionaries serving in the temple precinct (e.g., Num. 3:7-10).”<sup> 4</sup></p>

<p>The usage in Genesis 2 seems to have two layers of meaning: “farm/cultivate the Garden” (since it is an agricultural space) and “serve/worship God” (since the Garden is also a sacred space). The dual meanings are as intertwined in Hebrew grammar as they are intended to be in practice. The second Hebrew word (translated “take care of”) has a deeper religious meaning as well. The word can refer to protecting farmland from external threats, but in a danger-free sacred space like the Garden, the word more generally refers to “performing duties on the [temple] grounds,” that is, to “sacred service.”<sup>5</sup></p> 
 
<p>Walton therefore translates these two Hebrew words as “serve and preserve.”  These same words appear again together several times in Numbers to describe the priest’s duties in the temple.  Because of all this, Gordon Wenham describes Adam as “perhaps…an archetypal Levite” with a “quasi-priestly” role in the garden.<sup>8</sup>  Eve was created as Adam’s companion and “helper” in his work, a word which nowhere in the OT refers to a subordinate assistant, but rather to one who is at least equal to the one being helped.<sup>9</sup></p>

<p>Genesis 2 should banish from our minds any idea that creation care is somehow “secular” work for a Christian, or that it is not even our responsibility. This was the first task given to humanity, to serve and worship God by cultivating and protecting the natural world. The centrality of our responsibility in this regard is even clearer when we back up to the beginning of the chapter. We know there was a river “flow[ing] from Eden to water the garden” (v. 10), symbolizing that “all fertility emanates from the presence of God.”<sup> 10</sup> Nonetheless there could be no cultivated plants in the garden because “there was still no human being to farm the fertile land” (v. 5). With no gardener and no rain, the ground was watered indiscriminately; a human was needed to irrigate the waters and support a garden.<sup>11</sup> Therefore, God “formed the human from the topsoil” (Hebrew wordplay equivalent to “human from the humus”) before planting the garden. God certainly could have watered it another way without needing us, but He chose not to, and the resulting collaborative picture here is a beautiful one. All provision flows from God, but He has chosen to give us an essential part in further channeling his provisions in the natural world. Far from countering God’s creative work by destroying nature, we are intended to work with Him to preserve and further it.</p>

<p>Of course, though created primarily to glorify God, the world was also made to provide us abundantly with the food and resources that we need to live (Gen. 2:16). Yet we don’t need to look far to see that we have often failed in our responsibility to properly care for creation. We live in a fallen world, and sin has fractured the intended harmony of our relationships with God, creation, and each other (as described in Genesis 3:14-24).</p>

<p>I recently heard a striking crystallization of this fallen perspective in Spencer Tracy’s narration in the opening scene of the sprawling 1962 western film “How the West Was Won.” As the camera flies over majestic Western fields and mountains, the narrator tells us that “This land has a name today, and is marked on maps. But the names and the maps all had to be won, won from nature and from primitive man.” This is the fallen perspective – advancing our human purpose on earth is done through <em>defeating</em> nature and other people (derogatively labeled “primitive,” as well) apart from God. This perspective perfectly illustrates the conflict-based relationships that sin brings about, already described for us back in the first chapters of the Bible.</p>

<p>Are we doomed, then, to live helplessly in this way? If this is just the way the world is and the way we are, shouldn’t we just accept that? Apart from Christ the answer would be “yes,” but the New Testament makes it clear that though we are still fallen, the saving work of Christ has brought about a profound change in us. As N.T. Wright makes clear in his book <em>Surprised by Hope</em>, Jesus taught (and the Resurrection vindicated) that the Kingdom of God “was and is breaking in to the present world, to earth.”<sup> 12</sup>  Christ’s Resurrection was the first act of the future new creation. If we are truly “born again” into this new reality, this new way of living, we must strive (in the Spirit’s power) to live lives of wholeness and right relationships, putting our sinful nature to death (Colossians 3). In doing so, we would be wise to include Genesis 2 as we seek to follow God’s will and God’s Kingdom, “on earth as it is in heaven” (Matt. 6:10).</p>

<p class="intro">In part 2 of this series, David describes how Genesis 1, Genesis 2, and modern scientific accounts offer complementary and mutually enriching perspectives in our understanding of God's creation.</p>

<h3>Notes</h3>
<p class="date">1.  John H. Walton, <em>Ancient Near Eastern Thought and the Old Testament: Introducing the Conceptual World of the Hebrew Bible</em> (Grand Rapids, MI: Baker Academic, 2006), 125.<br />
2.  Biblical quotations are from the Common English Bible unless otherwise noted.<br />
3.  Both symbolized divine wisdom that humans had to receive from God obediently, with the proper “fear of God” that the Old Testament wisdom literature stresses as a prerequisite. Disobediently eating the Tree’s fruit would lead to death and disobeying God would lead to expulsion from the Garden. Similarly, disobediently touching the Ark brought death (Num. 4:15, 2 Sam. 6:1-7) and disobeying God’s instruction led to Israel’s exile from their Eden, the land of Canaan.<br />
4.  John H. Walton, <em>Genesis</em> (Grand Rapids, MI: Zondervan, 2001), 172.<br />
5.  Ibid., 173.<br />
6.  Ibid., 192.<br />
7.  See Numbers 3:7-8, 8:26, 18:5-6.<br />
8.  Gordon J. Wenham, “Sanctuary Symbolism in the Garden of Eden Story,” in <em>“I Studied Inscriptions from Before the Flood”: Ancient Near Eastern, Literary and Linguistic Approaches to Genesis 1-11</em>, ed. Richard S. Hess and David Toshio Tsumura (Winona Lake, IN: Eisenbrauns, 1994), 401.<br />
9.  Walton, <em>Genesis</em>, 176.<br />
10.  Ibid., 170.<br />
11. This follows Walton’s illuminating exegesis of this passage in <em>Genesis</em>, 164-65.<br />
12.  N.T. Wright, <em>Surprised by Hope: Rethinking Heaven, the Resurrection, and the Mission of the Church</em> (New York: HarperOne, 2008), 201.</p>

]]></content:encoded>
        <pubDate>Thu, 03 Jan 13 06:00:12 -0800</pubDate>
        <dc:creator>David Buller</dc:creator>
        <!--<dc:date>Jan 03, 2013 06:00</dc:date>-->
      </item>
            <item>
        <title>Katharine Hayhoe: Evangelical Christian, Climate Scientist</title>
        <link>http://biologos.org/blog/kathryn&#45;hayhoe&#45;evangelical&#45;christians&#45;climate&#45;scientist?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/kathryn&#45;hayhoe&#45;evangelical&#45;christians&#45;climate&#45;scientist?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>As an Evangelical and a scientist, Katharine Hayhoe is already a member of a rare breed.  As a climate change researcher who is also married to an evangelical Christian pastor, she is nearly one of a kind.</description>
        <content:encoded><![CDATA[<p>As an evangelical scientist, Katharine Hayhoe is already a member of a rare breed.  As a climate change researcher who is also married to an evangelical Christian pastor, she is nearly one of a kind.  In these three videos, Hayhoe divulges her beliefs about God, climate change, and the difficulties of believing in both those things.</p>

<p align="center"><object width="512" height="288"><param name="movie" value="http://www.pbs.org/wgbh/nova/secretlife/site_media/player.swf"></param><param name="allowFullScreen" value="false"></param><param name="flashvars" value="bgcolor=#000000&amp;autostart=false&amp;showdigits=true&amp;showicons=false&amp;bufferlength=3&amp;fullscreen=true&amp;skin=http://www.pbs.org/wgbh/nova/secretlife/site_media/stijl.swf&amp;controlbar=over&amp;file=http://www-tc.pbs.org/wgbh/nova/secretlife/site_media/video/Katharine_Hayhoe_10qs_512x288-H264-500.mp4&amp;image=http://www-tc.pbs.org/wgbh/nova/secretlife/site_media/video_stills/Katharine-10qsstill.jpg&amp;"></param><embed src="http://www.pbs.org/wgbh/nova/secretlife/site_media/player.swf" width="512" height="288" allowscriptaccess="never" allowfullscreen="false" flashvars="bgcolor=#000000&amp;autostart=false&amp;showdigits=true&amp;showicons=false&amp;bufferlength=3&amp;fullscreen=true&amp;skin=http://www.pbs.org/wgbh/nova/secretlife/site_media/stijl.swf&amp;controlbar=over&amp;file=http://www-tc.pbs.org/wgbh/nova/secretlife/site_media/video/Katharine_Hayhoe_10qs_512x288-H264-500.mp4&amp;image=http://www-tc.pbs.org/wgbh/nova/secretlife/site_media/video_stills/Katharine-10qsstill.jpg&amp;"></embed></object></p>

<p>The first video, “10 Questions with Katherine Hayhoe”, introduces the scientist in a brief and lighthearted interview.  Hayhoe is presented with 10 questions concerning her personal life and beliefs.  When asked, she explains that one thing people should know about Christianity is that having a relationship with the God of the universe is one of the most incredible experiences that a person can have. As the video unfolds, the viewer quickly begins to realize that, despite her unique profession of two seemingly incompatible beliefs, Hayhoe is a remarkably sane and “normal” individual.  Her role model, she explains, is her father-- the person who first introduced her to science and showed her that it could be “really cool”.  On a more serious note, the scientist admits that being both a scientist and a Christian can be difficult.  The most frustrating thing about her position, she says, is the amount of disinformation which is targeted at her very own Christian community.</p>
 
<p align="center"><object width="512" height="288"><param name="movie" value="http://www.pbs.org/wgbh/nova/secretlife/site_media/player.swf"></param><param name="allowFullScreen" value="false"></param><param name="flashvars" value="bgcolor=#000000&amp;autostart=false&amp;showdigits=true&amp;showicons=false&amp;bufferlength=3&amp;fullscreen=true&amp;skin=http://www.pbs.org/wgbh/nova/secretlife/site_media/stijl.swf&amp;controlbar=over&amp;file=http://www-tc.pbs.org/wgbh/nova/secretlife/site_media/video/Katharine_Hayhoe_Secret_512x288-H264-500.mp4&amp;image=http://www-tc.pbs.org/wgbh/nova/secretlife/site_media/video_stills/Katharine-video3still-evangelist.jpg&amp;"></param><embed src="http://www.pbs.org/wgbh/nova/secretlife/site_media/player.swf" width="512" height="288" allowscriptaccess="never" allowfullscreen="false" flashvars="bgcolor=#000000&amp;autostart=false&amp;showdigits=true&amp;showicons=false&amp;bufferlength=3&amp;fullscreen=true&amp;skin=http://www.pbs.org/wgbh/nova/secretlife/site_media/stijl.swf&amp;controlbar=over&amp;file=http://www-tc.pbs.org/wgbh/nova/secretlife/site_media/video/Katharine_Hayhoe_Secret_512x288-H264-500.mp4&amp;image=http://www-tc.pbs.org/wgbh/nova/secretlife/site_media/video_stills/Katharine-video3still-evangelist.jpg&amp;"></embed></object></p>

<p>In the second video, “Climate Change Evangelist”, Katharine Hayhoe delves into deeper discussion of the perceived conflict between climate change and Christian faith.  She explains that admitting her identity as a Christian scientist can be uncomfortable.  Since evangelicals are the targets of much disinformation concerning science in general -- and specifically the science surrounding climate change -- many people in the church have a misguided view of the subject and do not look kindly at her career choice.  One woman encountered by Hayhoe at a church in Texas, for example, believed that global warming was a lie taught in schools to mislead her children.  In an effort to realign misguided views like these, Katharine Hayhoe and her husband wrote a book addressing the deep-rooted emotions often associated with climate change.  People fear that addressing the climate issue will bring forth changes in the economy and uproot their way of life.  However, Hayhoe encourages her viewers to act out of love, as the Bible calls us to do, rather than out of fear.  Acting out of love inspires us to consider the poor and disadvantaged people around the globe when we respond to the reality of a changing climate.</p>

<p align="center"><object width="512" height="288"><param name="movie" value="http://www.pbs.org/wgbh/nova/secretlife/site_media/player.swf"></param><param name="allowFullScreen" value="false"></param><param name="flashvars" value="bgcolor=#000000&amp;autostart=false&amp;showdigits=true&amp;showicons=false&amp;bufferlength=3&amp;fullscreen=true&amp;skin=http://www.pbs.org/wgbh/nova/secretlife/site_media/stijl.swf&amp;controlbar=over&amp;file=http://www-tc.pbs.org/wgbh/nova/secretlife/site_media/video/Katharine_Hayhoe_Science_512x288-H264-500.mp4&amp;image=http://www-tc.pbs.org/wgbh/nova/secretlife/site_media/video_stills/Katharine-video4still-mean.jpg&amp;"></param><embed src="http://www.pbs.org/wgbh/nova/secretlife/site_media/player.swf" width="512" height="288" allowscriptaccess="never" allowfullscreen="false" flashvars="bgcolor=#000000&amp;autostart=false&amp;showdigits=true&amp;showicons=false&amp;bufferlength=3&amp;fullscreen=true&amp;skin=http://www.pbs.org/wgbh/nova/secretlife/site_media/stijl.swf&amp;controlbar=over&amp;file=http://www-tc.pbs.org/wgbh/nova/secretlife/site_media/video/Katharine_Hayhoe_Science_512x288-H264-500.mp4&amp;image=http://www-tc.pbs.org/wgbh/nova/secretlife/site_media/video_stills/Katharine-video4still-mean.jpg&amp;"></embed></object></p>

<p>In the final segment of this three part video montage, Hayhoe addresses the question of what climate change means. Specifically, she is concerned about how global warming affects people on a personal level.  While global warming generally brings to mind melting ice caps and polar bears, its implications are far more widespread, affecting the lives of everyone around the world- from cotton farmers in Texas to public health workers in Chicago.  If nothing is done to change current emission levels, the number of days per year which exceed 100 degrees Fahrenheit, for example, will begin to increase dramatically, and if emissions are increased, many areas will even develop extreme conditions like those seen currently in Death Valley.  Hayhoe’s goal is to demonstrate clearly that the only way to preserve the world for future generations is to significantly reduce dependence on inefficient means of getting energy and instead transition to cleaner renewable energy sources.</p>

<p><strong>Editor's Note: These videos first appeared on the Nova program <a href="http://www.pbs.org/wgbh/nova/secretlife/scientists/katharine-hayhoe/" target="_blank">"The Secret Life of Scientists & Engineers"</a>.</strong></p>]]></content:encoded>
        <pubDate>Fri, 09 Nov 12 05:00:21 -0800</pubDate>
        <dc:creator>Katharine Hayhoe</dc:creator>
        <!--<dc:date>Nov 09, 2012 05:00</dc:date>-->
      </item>
            <item>
        <title>Oxygen and Co&#45;Creation</title>
        <link>http://biologos.org/blog/oxygen&#45;and&#45;co&#45;creation?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/oxygen&#45;and&#45;co&#45;creation?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>In the mid&#45;seventeenth century, John Mayow conducted a series of experiments in which he showed that burning candles in bell jars consumed one&#45;fifth of the enclosed air before extinguishing. Remarkably, mice placed in bell jars did exactly the same thing...</description>
        <content:encoded><![CDATA[<p>In the mid-seventeenth century, John Mayow conducted a series of experiments in which he showed that burning candles in bell jars consumed one-fifth of the enclosed air before extinguishing. Remarkably, mice placed in bell jars did exactly the same thing (although the conclusions of these experiments were rather more terminal for the living subjects than for the candles). He concluded that a substance making up 20% of air was necessary for both combustion and respiration. More than a century later, Joseph Priestley showed that a mouse in a closed container would not die if a plant was included. Apparently plants were capable of restoring nitroaerus, which Priestley called &quot;dephlogisticated air,&quot; removed by animals.</p>
<p>In 1774, the French chemist Antoine Lavoisier replicated the relevant experiments in more controlled ways to demonstrate that mass was conserved during combustion. He also renamed the part of the air that burned 'oxyg&egrave;ne.' English scientists resisted the French scientist's new name, not least because the English Priestly had already published his discovery of the gas. 'Oxygen' nonetheless entered the common English vocabulary in part due to one of the first popular science books, <em>The Botanic Garden</em> (1791), which included a poem praising the gas using the preferred French name. By coincidence, this book also promoted some early ideas about biological evolution (specifically, it suggested that sexual reproduction might be important to evolution, which might help to explain the popularity of a book of poems about science). It was written by Erasmus Darwin, the grandfather of Charles Darwin, who first proposed the modern form of the theory of biological evolution in his 1859 book, <em>On the Origin of Species</em>.</p>
<p>150 years later, we are discovering that the lines connecting evolution and oxygen run deeper than the Darwin family tree. We now know, for instance, that for roughly half of the Earth's 4.6-billion-years of history, there was little to no oxygen in the atmosphere. Instead, oxygen entered the atmosphere in two major pulses, with one between 2.4 and 2.2 billion years ago, and another between 0.8 and 0.54 billion years ago. Recent evidence suggests that the first pulse may have actually been the largest event in a series of fits and starts beginning at around 2.7 billion years ago that finally produced a stable low oxygen atmosphere by around 1.8 billion years ago.</p>
<p>Remarkably, both episodes of atmospheric oxygenation happened just before explosions in biological diversity. We have spotty evidence of unicellular eukaryotes (cells with nuclei) before 2.4 billion years ago, but the first fossil evidence for large, diverse eukaryotic communities comes at 1.5 billion years ago. If you are a human, this is part of your history; humans are multicellular eukaryotes descended from one of these early unicellular pioneers. Multicellular animal life is an innovation that seems to have required more oxygen: animals don't appear in the fossil record until about 0.61 billion years ago, toward the end of the second pulse of oxygen.</p>
<p>It is, perhaps, not surprising that major evolutionary events in the eukaryotic family tree, including the origin and diversification of the animals, would be tied to or even driven by major changes in atmospheric oxygen abundance. Eukaryotes generally, and animals specifically, are oxygen lovers. As the subjects of Mayow and Priestly died to prove, we require oxygen for respiration. In general, the larger and more organizationally complex we are (for instance, a human versus a slime mold), the more oxygen we require.</p>
<p>But where did all the oxygen come from? Ultimately, it was produced by the bacterial equivalents of the plants in Joseph Priestley's experiment, a group of photosynthetic microbes called the cyanobacteria. These bacteria are the first and only organisms to have evolved the ability to produce oxygen by photosynthesis. In fact, plants are able to photosynthesize only because their cells harbor descendants of one of the early cyanobacteria. We call them chloroplasts and think of them as little cellular organs, but they are actually the great-great-great... granddaughters of a cyanobacterium that long ago gave up its independence in exchange for the stable environment inside a eukaryotic cell. In any case, photosynthesis is the only known geological process capable of producing oxygen at the rates required for the two pulses of atmospheric oxygenation. The first pulse was probably largely accomplished by cyanobacteria, while the second pulse was probably mostly associated with the cyanobacterial denizens of eukaryotic algae.</p>
<p>What is remarkable about all of this is the extent to which modern life and the atmosphere are products of each other's evolution. The tiniest of photosynthetic organisms played one of the most important roles in shaping the sky, and the sky helped to usher in the age of animals! As a Christian and a geobiologist, I do not believe that this relationship is anticipated or predicted by the Biblical creation accounts.</p>
<p>But then again, why should it have been? The original audience for these accounts would have found concepts like bacteria or even oxygen incomprehensible. The people for whom the Bible was originally addressed thought about origins primarily in terms of ongoing national conflicts and the current human condition. Faced with a variety of violent creation myths that reinforced national conflicts, Genesis said that the universe was created to be good, peaceful, and orderly by one god. It specifically listed things worshipped by other nations as creatures of that god, and in the climax of the creation account, Abraham was called by the same god to be a blessing to all the nations through Israel.</p>
<p>I am not claiming that the Bible cannot be read in a way that can shape us in real and meaningful ways today. In fact, for those who believe that the Bible is inspired, part of the meaning of inspiration has to be that the Bible is God's powerful word to both those with no concept of modern science (most of the world's population, both today and in the past) and to those deeply engaged in its practice. But, and this is a big but, we contemporary Americans read the Bible best when we are sensitive to the assumptions of the original audience, carefully observe how the Bible transformed those assumptions, and look for opportunities to do the same thing with our thinking.</p>
<p>I think that it is important for Christians to reflect on the view of origins that science has given us in light of the thinking evident in the Biblical creation accounts. We have to do this because science gives us a story that is inherently without philosophical or theological meaning; it is up to us to give it meaning by understanding it in relationship with our beliefs. For instance, some see the evolutionary history of life and the Earth and give that history meaning by elevating chance and necessity to the level of prime actors in their own modern creation account. This meaning is not inherent to the theory of evolution; it is supplied by an atheistic belief system external to the theory. I suggest that this view mistakes created things (chance and necessity) for the Creator.</p>
<p>Others have preferred to see the regularity of the universe as the action of an orderly God. This is an old approach to natural theology that was popular among many early scientists, and saw God as responsible for doing such things as maintaining the planets in consistent paths around the sun. Still others look for God in the unexplained. This is a newer approach that sees God as acting primarily in short bursts not explainable by the regular, orderly function of the universe. Looking for God in these ways is a little like trying to capture him in a bell jar, an approach that worked perfectly well with oxygen for Mayow, Priestley, and Lavoisier, but one that is unlikely to impress the Creator described in the Bible.</p>
<p>I prefer to see the same history in the light of a God who desires to share aspects of his nature with his creation, notably including his creativity. Just as he has made humans to be creators (with a little 'c'), he has given the rest of our world the gift of being instrumental in its own creation through the process of evolution. This surely must have been part of what God saw when he described his creation as good! It is my hope that the modern American church can learn to see the goodness of creation in things like the evolutionary history of life and the atmosphere, as well.</p>

<br><p class="intro">This post first appeared in October 2009</p>]]></content:encoded>
        <pubDate>Sat, 13 Oct 12 05:00:52 -0700</pubDate>
        <dc:creator>Mike Tice</dc:creator>
        <!--<dc:date>Oct 13, 2012 05:00</dc:date>-->
      </item>
            <item>
        <title>Death and Rebirth: The Role of Extinction in Evolution</title>
        <link>http://biologos.org/blog/death&#45;and&#45;rebirth&#45;the&#45;role&#45;of&#45;extinction&#45;in&#45;evolution?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/death&#45;and&#45;rebirth&#45;the&#45;role&#45;of&#45;extinction&#45;in&#45;evolution?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>When they imagine evolution, many Christians picture novelty: new species arising over time, or speciation events. But as the most recent Southern Baptist Voices exchange makes clear, many Christians also focus on the role of death in evolution—something that can be a stumbling block.</description>
        <content:encoded><![CDATA[<p>When they imagine evolution, many Christians picture novelty: new species arising over time, or <em>speciation</em> events. But as the most recent Southern Baptist Voices exchange makes clear, many Christians also focus on the role of death in evolution—something that can be a stumbling block to seeing it as a means by which a good God creates.  This is especially true when we imagine the death of individual creatures in fierce competition for limited resources, whether such struggle takes place on the savanna or elsewhere.  </p>

<p>In his essay for that series, Jeff Schloss addressed the question of whether animal death is a natural evil, but also noted that such theological considerations aside, death does not actually “drive evolution” in the way most people imagine—especially when they think of violence in the natural world.  This more complicated sense of death’s role is partially the result of modern evolutionary science recognizing the importance of cooperation and inter-relation among species, rather than just direct competition.  But just as important is the knowledge that evolution is significantly shaped not by the deaths of individual creatures, but by <em>extinction</em>, the loss of species over time. In this post, we explore some aspects of how extinction acts as both a destructive and creative force in evolutionary history, including the evolutionary history of mammals. </p>

<h3>Sporadic extinction</h3>
<p>Extinction is actually a common feature of life on earth when viewed over long (e.g. geological) timescales. By some estimates, over 99% of the species that have ever lived have gone extinct. One factor that promotes extinction is the fact that evolution does not produce species that are <em>optimally</em> adapted to their environment, but only <em>better adapted than their local competitors</em>. Invasive species testify to this fact: local (endemic) species are not always the best-adapted species for their own environment. Examples abound where species from other environments are actually better-suited to out-compete endemic species. Here in my own province, the invasive <a href="http://www.bcinvasives.ca/invasive-species/invasive-plants/himalayan-blackberry">Himilayan blackberry</a> (<em>Rubis discolor</em>) easily outcompetes many endemic species. If endemic species were optimally adapted to their environment, this would not be possible, as they would outcompete all exotic species. Instead, exotic species, by chance, might be better adapted to an ecosystem they did not evolve in. These exotics may be capable of eliminating endemic species altogether. </p>

<p>Such an extinction event (of a single species, or perhaps a handful of species) alters the environment of other remaining species in an ecosystem. This, in turn, may influence the ability of some of these remaining species to reproduce compared to other species. For example, the extinction of a competitor might allow a species to increase in population size. Conversely, the extinction of a species that provides a benefit (such as a pollinator) may reduce a species in number. As the ecosystem landscape shifts due to loss of species, new biological opportunities, or niches, might arise. These new niches are then available to support new species to fill them. </p>

<h3>Extinction, <em>en masse</em></h3>
<p>One way to appreciate how extinction opens up new niches is to examine mass extinction events – geologically brief periods where large numbers of species go extinct at the same time. Over the history of life on our planet there have been several mass extinction events. The largest such event, at the end of the <a href="http://en.wikipedia.org/wiki/Permian%E2%80%93Triassic_extinction_event">Permian</a> (~250 million years ago) appears to have been caused, at least in part, by intense volcanic activity over several hundred thousand years. This activity likely shifted CO2 levels and eventually led to a “runaway” greenhouse effect that dramatically raised global temperatures and led to anoxic (i.e. oxygen-depleted) oceans, though the exact contributions of these varied factors remains an area of scientific debate. What appears certain is that during this period environmental changes were too rapid for most species to keep evolutionary pace with, and as a result over 90% of the world’s species alive at that time went extinct. Obviously this represents destruction of biodiversity on an unimaginable scale, and the destructive effects of this event are with us to this day. </p>

<h3>Speciation, <em>en masse</em></h3>
<p>This destruction, however, is not the whole story. Following on from the Permian mass extinction, we observe a steady increase in new species. These are species previously unknown in the fossil record. In fact, this pattern (a “radiation” of new species following an extinction event) is the rule, not an exception – we see the same effect after every mass extinction in the fossil record. Extinction is a driving force for novelty. </p>

<p>Perhaps the most famous mass extinction event is the <a href="http://en.wikipedia.org/wiki/Cretaceous%E2%80%93Paleogene_extinction_event">Cretaceous – Paleogene (KPg) extinction</a>, and it too follows this standard pattern. This mass extinction took place 65 million years ago when an asteroid ~10 kilometers in diameter struck the Yucatan peninsula. (Note: this event was formerly known as the Cretaceous – Tertiary (K-T) extinction, but that terminology is in decline within the scientific community). This extinction event is famous since it is the one that eliminated the dinosaurs (with the exception of the ancestors of modern birds). As with the Permian extinction, the elimination of so many species shifted the evolutionary landscape for the remaining species, and the result was a burst of speciation that appears rapid when viewed in geological time. Significantly for our own species, following the KPg extinction event is a burst in mammalian speciation, as small mammals that survived the event diverge and fill niches left empty by the dinosaurs. Without this event, the trajectory of mammalian evolution would certainly look very different. </p>

<h3>Clearing the deck, and re-filling the niches</h3>
<p>One interesting fact to note is that biological features that make a species resistant to usual, sporadic extinction are not necessarily the same features that will be useful during a mass extinction event. While species are continually under selection at the local level, there is no mechanism for (pre) selection to survive a mass extinction. As such, only species that happen to have the right combination of traits will survive, and often spread widely after a mass extinction. These so-called “disaster species” are usually generalists, and will later be displaced by more specialized species as they arise.  As such, where sporadic extinction allows for more gradual turnover in species, mass extinction events are major “resets” of evolution that can radically shift what constitutes “well adapted” in a geological eyeblink. For mammals at the KPg boundary, small body size and an omnivorous diet (including the ability to scavenge detritus) were the “winning” combination of traits that allowed them to survive where larger, more specialized animals (think <em>Tyrannosaurus rex</em>) could not. From this rather humble station, mammals would come to dominate the world’s ecosystems over the coming eons – including a lineage that would someday lead to our own species. Far from only a destructive force, extinction is a powerful mechanism to allow evolutionary innovation, and one that was of significant importance to us. </p>

<h3>For further reading: </h3>
<p>Meredith, R.W. et al (2011). Impacts of the Cretaceous Terrestrial Revolution and KPg Extinction on Mammal Diversification. Science 334; 521-524. </p>

<p>Fastovsky, D.E.  (2005). The Extinction of the Dinosaurs in North America. GSA Today (15); 1052-5173. </p>

<p>Benton, M.J. and Twitchett, R.J. (2003). How to kill (almost) all life: the end-Permian extinction event. TRENDS in Ecology and Evolution (18); 358-365. </p>
]]></content:encoded>
        <pubDate>Tue, 14 Aug 12 05:00:13 -0700</pubDate>
        <dc:creator>Dennis Venema</dc:creator>
        <!--<dc:date>Aug 14, 2012 05:00</dc:date>-->
      </item>
            <item>
        <title>What evidence do we have for evolution besides fossils and genes?</title>
        <link>http://biologos.org/questions/what&#45;evidence&#45;do&#45;we&#45;have&#45;for&#45;evolution&#45;besides&#45;fossils&#45;and&#45;genes?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/questions/what&#45;evidence&#45;do&#45;we&#45;have&#45;for&#45;evolution&#45;besides&#45;fossils&#45;and&#45;genes?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>Scientists have found multiple lines of evidence for evolution, not just one or two.  These types of evidence are independent of each other, coming from sources as different as ancient fossils and modern genetics labs. Evidence also comes from comparing the anatomy of creatures living today.  All creatures with four limbs (whether mammals, birds, or reptiles) have the same bone structure in each limb, pointing to their descent from a common ancestor. More evidence comes from biogeography.  Isolated islands are missing common species found on the mainland, but are filled with many unique species that can be related by a common ancestor. Finally, evidence comes from embryonic development.  As an embryo of a mammal grows, its heart develops through stages similar to fish, amphibians, and reptiles.  God’s creation declares the history of life in many different ways. All these ways are pointing to a consistent picture of God creating through evolution.</description>
        <content:encoded><![CDATA[<em>Coming soon.</em>]]></content:encoded>
        <pubDate>Fri, 13 Jul 12 13:25:46 -0700</pubDate>
        <dc:creator></dc:creator>
        <!--<dc:date>Jul 13, 2012 13:25</dc:date>-->
      </item>
            <item>
        <title>The Fossil Record</title>
        <link>http://biologos.org/blog/the&#45;fossil&#45;record?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/the&#45;fossil&#45;record?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>There are two opposite errors which need to be countered about the fossil record: 1) that it is so incomplete as to be of no value in interpreting patterns and trends in the history of life, and 2) that it is so good that we should expect a relatively complete record of the details of evolutionary transitions within all or most lineages.</description>
        <content:encoded><![CDATA[<h3>The Fossil Record:  Is there enough evidence ?</h3>

<p>There are two opposite errors which need to be countered about the fossil record: 1) that it is so incomplete as to be of no value in interpreting patterns and trends in the history of life, and 2) that it is so good that we should expect a relatively complete record of the details of evolutionary transitions within all or most lineages.</p>

<p>What then is the quality of the fossil record?  It can be confidently stated that only a very small fraction of the species that once lived on Earth have been preserved in the rock record and subsequently discovered and described by <a onmouseover="toggle_visibility('pop1');" onmouseout="toggle_visibility('pop1');">science</a>.</p>

<div class="see-also" id="pop1" style="display:none;">A more expanded discussion of this topic can be found in Miller, K.B., 2003, “Common descent, transitional forms, and the fossil record,” IN, K.B. Miller (ed.), <em>Perspectives on an Evolving Crreation</em>, Wm. B. Eerdmans, Grand Rapids.</div>

<p>There is an entire field of scientific research referred to as "taphonomy" -- literally, "the study of death."   Taphonomic research includes investigating those processes active from the time of death of an organism until its final burial by sediment.  These processes include decomposition, scavenging, mechanical destruction, transportation, and chemical dissolution and alteration.  The ways in which the remains of organisms are subsequently mechanically and chemically altered after burial are also examined -- including the various processes of fossilization.  Burial and "fossilization" of an organism's remains in no way guarantees its ultimate preservation as a fossil.  Processes such as dissolution and recrystallization can remove all record of fossils from the rock.  What we collect as fossils are thus the "lucky" organisms that have avoided the wide spectrum of destructive pre- and post-depositional processes arrayed against them.</p>

<p>Soft-bodied organisms, and organisms with non-mineralized skeletons have very little chance of preservation under most environmental conditions.   Until the Cambrian nearly all organisms were soft-bodied, and even today the majority of species in marine communities are soft-bodied.  The discovery of new soft-bodied fossil localities is always met with great enthusiasm.  These localities typically turn up new species with unusual morphologies, and new higher taxa can be erected on the basis of a few specimens!  Such localities are also erratically and widely spaced geographically and in geologic time.</p>

<p>Even those organisms with preservable hard parts are unlikely to be preserved under "normal" conditions.  Studies of the fate of clam shells in shallow coastal waters reveal that shells are rapidly destroyed by scavenging, boring, chemical dissolution and breakage.  Occasional burial during major storm events is one process that favors the incorporation of shells into the sedimentary record, and their ultimate preservation as fossils.  Getting terrestrial vertebrate material into the fossil record is even more difficult.  The terrestrial environment is a very destructive one: with decomposition and scavenging together with physical and chemical destruction by weathering.</p>

<p>The potential for fossil preservation varies dramatically from environment to environment.  Preservation is enhanced under conditions that limit destructive physical and biological processes.  Thus marine and fresh water environments with low oxygen levels, high salinities, or relatively high rates of sediment deposition favor preservation.  Similarly, in some environments biochemical conditions can favor the early mineralization of skeletons and even soft tissues by a variety of compounds (eg. carbonate, silica, pyrite, and phosphate).  The likelihood of preservation is thus highly variable.  As a result, the fossil record is biased toward sampling the biota of certain types of environments, and against sampling the biota of others.</p>

<p>In addition to these preservational biases, the erosion, deformation and metamorphism of originally fossiliferous sedimentary rock have eliminated significant portions of the fossil record over geologic time.  Furthermore, much of the fossil-bearing sedimentary record is hidden in the subsurface, or located in poorly accessible or little studied geographic areas.  For these reasons, of those once-living species actually preserved in the fossil record, only a small portion have been discovered and described by science.  However, there is also the promise of continued new and important discovery.</p>

<p>The forces arrayed against fossil preservation also guarantee that the earliest fossils known for a given animal group will always date to some time after that group first evolved.  The fossil record always provides only minimum ages for the first appearance of organisms.</p>

<p>Because of the biases of the fossil record, the most abundant and geographically widespread species of hardpart-bearing organisms would tend to be best represented.  Also, short-lived species that belonged to rapidly evolving lines of descent are less likely to be preserved than long-lived stable species.  Because evolutionary change is probably most rapid within small isolated populations, a detailed species-by-species record of such evolutionary transitions is unlikely to be preserved.  Furthermore, capturing such evolutionary events in the fossil record requires the fortuitous sampling of the particular geographic locality where the changes occurred.</p>    

<p>Using the model of a branching tree of life, the expectation is for the preservation of isolated branches on an originally very bushy evolutionary tree.  A few of these branches (lines of descent) would be fairly complete, while most are reconstructed with only very fragmentary evidence.  As a result, the large-scale patterns of evolutionary history can generally be better discerned than the population-by-population or species-by-species transitions.  Evolutionary trends over longer periods of time and across greater anatomical transitions can be followed by reconstructing the sequences in which anatomical features were acquired within an evolving branch of the tree of life.</p>]]></content:encoded>
        <pubDate>Fri, 13 Jul 12 05:00:15 -0700</pubDate>
        <dc:creator>Keith Miller</dc:creator>
        <!--<dc:date>Jul 13, 2012 05:00</dc:date>-->
      </item>
            <item>
        <title>Being Fruitful</title>
        <link>http://biologos.org/blog/being&#45;fruitful?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/being&#45;fruitful?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>Many people use the words &quot;dominion&quot; and &quot;subdue&quot; as &quot;unconditional permission to use the world as they please.&quot; I came to realize, like many, that such an interpretation is contradicted by the rest of the Bible.</description>
        <content:encoded><![CDATA[<p class="intro">A version of Lipford's essay originally appeared in <em>First Things First</em>, the newsletter of First Baptist Church of Richmond.</p>

<p>Along the side of our patio in front of our family garden, I grow grapes.  I was inspired to grow them from the tradition of my mother's homeland in Cyprus, where grapes, olives, figs and lemons adorn the patios of each house.  I was challenged to grow them well by the words of Jesus in John 15: "I am the vine, you are the branches, I will prune you to produce much fruit."  Pruning is the secret to successful grapes, but that's another story.</p>

<p>The point is that in tending that grape arbor and our family garden, and exploring the beautiful landscapes we are blessed with in Virginia, my wife Elizabeth and I, along with our three daughters, are in communion with the Creator and Sustainer of heaven and earth.  That may sound like a lofty statement, but for me, nature, His created order, is where I find Him most personally. I have known and recognized this since I was a boy.</p>

<p>Though born in Richmond, I was raised in Portsmouth, Virginia, where my father and I would fish along the Elizabeth River and the Chesapeake Bay.  With my friends, I hunted in the Great Dismal Swamp.  My father grew up on my Grandpa's farm in Tennessee near Bristol and he took our family back there often.  My grandfather was one of those vanishing breeds of men who had fidelity and love for the land.  He was dependent on the land for his food and a few cash crops for income.  He was intimately tied to the rhythms of the seasons and his work in the fields.</p>
  
<p>My grandfather and my aunts and uncles looked at this work as a partnership with the Lord.  They taught me how to care for the land, as well as the names of plants that grew in the forests and along the streams that surrounded their farms.  They also taught me skills that made me appreciate their way of life. Through these early experiences, I became fascinated with an essential question: What makes nature tick?  I also developed an interest in the spiritual relationship between God and His creation.  And so the journey began.</p>

<p>I took up the study of biology at Virginia Tech focusing on stream ecology, and then worked as a field biologist surveying rivers throughout the Southeast.  Eventually, I returned to graduate school to study forest ecology in the Shenandoah National Park.  My faith in the biblical account of creation was challenged by professors who taught evolution as the mode of creation of living things.</p>

<p>This challenge I brushed aside until I began teaching biology at a community college in Clifton Forge.  The words in the textbooks and the words of Genesis took on new meaning.  Did they contradict each other?  Could all forms of life really evolve by chance?   Weren't we created in His image?   My students questioned me about this conflict and I started a search for the answers.</p>

<p>For several years I wrestled with these questions as an intellectual exercise.   I began to make progress only when I started answering with my heart along with my head, aided by that other gift received from my parents, trust in the power of prayer.  Looking back, this doubt and questioning, this need to have all the answers, made my faith real exactly as it taught me that I <em>don't</em> need to have all the answers: that is where faith comes in.</p>

<p>I do know with certainty that God created the heavens and the earth, and manages and sustains His creation even today.   I cannot know with certainty how He did it with such precision and beauty.   How God created is still a mystery that science, by its methods, tries to discover and cannot fully explain, and one that the Bible is mostly silent on.</p>

<p>To me, there should be no contradiction between science and the Bible.  In the beginning, God was there and science cannot speak to that.  It is by faith that I know that God created the world not by chance, but for his purposes and glory.  The precision of natural order and its beauty have always focused me on the Creator, just as Paul states in Romans that all creation bears witness to God. The more I study nature and natural sciences, the more it drives me back to God who made all things.</p>

<p>In time, I was hired by The Nature Conservancy in Richmond as the ecologist and director of a new biological inventory for Virginia.  Then another faith question came.  Why did the Church not speak to the Christian practice of stewardship as it relates to creation?  Why did many in my profession worship the creation and not the Creator?</p>

<p>I stumbled upon the work of Wendell Berry, who has since become one of my favorite authors.  In a short essay he wrote in 1988 entitled <em>God and Country</em>, he said we must deal with the true meaning of Genesis 1:28 where God told Adam and Eve to "be fruitful and multiply and replenish the earth and subdue it."  He was right.  Berry noted that many people use the words "dominion" and "subdue" as "unconditional permission to use the world as they please."  I came to realize, like many, that such an interpretation is contradicted by the rest of the Bible.</p>

<p>The ecological teaching of the Bible is clear.  God made the world and it pleased Him.  It is His and He loves it.  He has never given up title to it.  He wants us to take excellent care of it.  In Genesis we see it in His instructions to Adam and Eve in the Garden; in Leviticus 20, we see it in the Sabbath year and the Jubilee—laws governing land use, land rest and God's ownership of the land; in Psalm 24 David affirms "the earth is the Lord's and everything in it"; Jesus, in Matthew 6, tells us not to worry, for if God cares for the birds and plants, he'll also care for you; and in Romans 8:19, Paul says the creation eagerly awaits freedom when right relationships will be restored.</p>

<p>Biblical ecology is really a moral understanding of what God expects of us in relation to the natural world, but also in relation to the other people with whom we share it.  This kind of stewardship has only been recently talked about in the Church.  It means careful management, not destruction and abuse.  It is infinitely practical because a healthy planet is in our best interest (we depend on its fruitfulness, after all), but biblical stewardship is also an act of loving our neighbors as ourselves, of loving even our children and grandchildren, by leaving them a decent place to live.</p>

<p>Psalm 8 lays out a mystery that, with the rest of Scripture in mind, invites a response in action as well as praise:  "When I consider the heavens, the work of your fingers, the moon and stars you have ordained, what is man that you are mindful of him?" After more than 20 years with The Nature Conservancy in Richmond, Elizabeth and I have made a home for our family and have a church home, as well—all places in which we can respond to that mystery by bearing fruit. And though my answering the call to use my talents and time in each of those realms branches in many directions, it is always rooted in my awe of God, who created and sustains the universe <em>and</em> seeks a relationship with us.  It is a call I live out in my vocation of protecting and restoring the lands and waters in Virginia, and a call our family lives out in our garden, in our frequent excursions in the outdoors, our worship of the Lord in church and at home, and, yes, even in growing grapes.</p>]]></content:encoded>
        <pubDate>Tue, 12 Jun 12 08:00:11 -0700</pubDate>
        <dc:creator>Michael Lipford</dc:creator>
        <!--<dc:date>Jun 12, 2012 08:00</dc:date>-->
      </item>
            <item>
        <title>For the Love of the World: John Stott and His Passion for Creation</title>
        <link>http://biologos.org/blog/for&#45;the&#45;love&#45;of&#45;the&#45;world&#45;john&#45;stott&#45;and&#45;his&#45;passion&#45;for&#45;creation?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/for&#45;the&#45;love&#45;of&#45;the&#45;world&#45;john&#45;stott&#45;and&#45;his&#45;passion&#45;for&#45;creation?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>Some criticized John for his theistic evolutionary position and even his appreciation for Darwin. But Stott saw no contradiction between his own commitment to the authority of Scripture and his openness to God’s use of evolution in His creative process.</description>
        <content:encoded><![CDATA[<p>A few months ago a very important looking letter showed up in my mailbox. Written with the glorious flare that only an expensive fountain pen can produce, my name and address were written brightly in perfect cursive, and the return address displayed the formidable name, title and address of a London barrister.  Ripping open the letter, I found a neatly printed check for £1000 inside, along with a note informing me that the former Rev. Dr. John R.W. Stott had left this money to me in his will, as it was his wish that each of his former study assistants be given a posthumous gift of gratitude for our service to him.</p>

<p>It didn’t seem right to deposit such a gift unreflectively into our bank account, allowing it to be swallowed up anonymously into our daily expense fund. My wife Sarah and I talked about a symbolic way we might use the money to honor John’s mark of grace on both of our lives. We very quickly settled on our decision: an SLR camera with a fine telephoto lens.</p>

<p>Many people remember John Stott for his books and preaching, but fewer remember him for his love of creation, his ornithological passion, and his knack for bird photography. On the very first day of my job working as his study assistant, I found on my desk a brand new set of binoculars and a copy of “Birds of Europe,” by Lars Johnson (the definitive guide). No study assistant was to work for John unless we shared in his love for birds, or at least could ably feign it. I soon discovered how seriously he took this avocation. In London he would stop whatever meeting we might be rushing off to in order to catch a look at a passing Kestrel. At his writing cottage in Southwest Wales we would begin every Sunday morning at Pickleridge Pools to see the Loons and Cormorants. Wherever we traveled, whether Uganda, India or Hungary, we would always schedule an extra few days to visit the local bird life with the accompaniment of a local expert.</p>

<p><img src="http://biologos.org/uploads/static-content/stott_book_cover.jpg" alt="" height="363" width="240" style="float:right; margin:10px 0px 10px 10px;" />But I also discovered that his love for birds was an extension of his love for creation and for its Creator. Uncle John took seriously the Psalmist’s words, “Great are the works of the Lord, studied by all who delight in them” (Ps 111:2). Taking “the works of the Lord” to include both God’s work of creation and redemption, he would often say that nature study and Bible study must go hand in hand. He was ahead of his time in calling Christians to have a more robust doctrine of and appreciation for Creation, and he viewed having at least one pursuit in the realm of natural history as an outflow of Christian discipleship. Indeed, it is striking that in his very last book, <em>The Radical Disciple</em>, in which he reflects on “some neglected aspects of our calling,” he includes “Creation Care” among Christian responsibilities like Christlikeness and Dependence.<sup>1</sup> And as remarkable as his accomplishments were in authoring such influential books as <em>Basic Christianity</em> and <em>The Cross of Christ</em>, it was his much less well known book <em>The Birds Our Teachers</em>,<sup>2</sup> which includes over 150 of his own photographs, that he would most often pull out to show visiting guests.</p>

<p>Some criticized John for his theistic evolutionary position and even his appreciation for Darwin, who John viewed as a man genuinely conflicted with how his discoveries could be integrated with his personal Christian faith. But Stott saw no contradiction between his own commitment to the authority of Scripture and his openness to God’s use of evolution in His creative process. He was of course unequivocal in his assertion that “One cannot be a Christian and not believe in creation.”<sup>3</sup>  Yet believing that Genesis 1 speaks more to the “why” rather than the “how” of creation, John also affirmed, “Those Christians who believe in evolution…mean that the huge variety of animal and vegetable forms can best be accounted for not by the independent creation of each, but by a gradual process of ‘descent with modification’, whether or not Darwin’s ‘natural selection’ is the best explanation of its mechanisms.”<sup>4</sup>  If anything, for John the possibility of God’s implementation of the evolutionary process was a striking example of the way God does not simply create but is also actively involved in sustaining and ordering His world. </p>

<p>So on the date of John’s birthday, April 27, we used his gift and bought our new camera. Laying it out on the table, I realized I needed a spacious and protective carrying case to hold the various lenses and equipment. I climbed up into the attic and retrieved John’s old camera bag, which he passed on to me after he had his second embolism and could no longer see well enough to take photographs. As I opened it up and examined the various lenses and mounts inside, now too old to adapt to any of the modern equipment, I realized I was holding in my hands the tools of one man’s passion and an expression of his love for his triune creator God. Deeply moved, I picked up my own camera, a new tool for my own stewardship of created life, and headed outside.</p>

<h3>Notes</h3>
<p class="date">1. John Stott, <em>The Radical Disciple</em> (IVP, 2010).<br />
2. John Stott, <em>The Birds Our Teachers: Biblical Lessons from a lifelong bird-watcher</em> (Angus Hudson, 1999).<br />
3. Ibid.<br />
4. John Stott, <em>People Our Teachers</em> (Angus Hudson, 2002), 110.</p>
]]></content:encoded>
        <pubDate>Sun, 03 Jun 12 12:20:38 -0700</pubDate>
        <dc:creator>Corey Widmer</dc:creator>
        <!--<dc:date>Jun 03, 2012 12:20</dc:date>-->
      </item>
            <item>
        <title>Understanding Evolution: Theory, Prediction and Converging Lines of Evidence, Part 1</title>
        <link>http://biologos.org/blog/understanding&#45;evolution&#45;theory&#45;prediction&#45;and&#45;evidence&#45;1?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/understanding&#45;evolution&#45;theory&#45;prediction&#45;and&#45;evidence&#45;1?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>In science, we don’t really know the true way things actually work. What we have are theories—broad explanatory frameworks supported by experimentation, which we can use to make testable predictions about the natural world.</description>
        <content:encoded><![CDATA[<p class="intro">One of the challenges for discussing evolution within evangelical Christian circles is that there is widespread confusion about how evolution actually works. In this (intermittent) series, I discuss aspects of evolution that are commonly misunderstood in the Christian community. In this post, we explore how evolution is a theory in the scientific sense, how it is supported by converging lines of evidence, and how it can make accurate predictions about the natural world, using whale evolution as an example.</p>

<h3>Evolution: just a theory</h3>
<p>One game that my (young) children like to play is a guessing game where both players select a character from among many choices, and by process of elimination, tries to guess the character the other has selected. Questions like “does your character have red hair? glasses?” etc., are used to narrow down the possibilities. Once you have guessed correctly which character your opponent has selected, you can perfectly predict the answer to every question thereafter (and a good many parents likely prolong the questioning to keep the hopes of victory alive for their children).  When considered separately, the individual features of each character—glasses, brown hair, purple hat, and so on—mean almost nothing, since they could be features shared with other characters in the game. Only the convergence of multiple features is indicative of a good guess, and the accuracy of that guess is put to the test every time a new question is asked.</p>

<p>A good theory is something like this: an educated guess, based on and consistent with all past work on the topic to date.  It allows you to predict how future tests should pan out. In the guessing game, there are limited options to choose from (so the analogy, like all analogies, eventually breaks down). In science, we don’t really know the true way things actually work. What we have are <em>theories</em>—broad explanatory frameworks supported by experimentation, that make sense of our current collection of facts—that we can use to make testable predictions about the natural world. All theories in science are provisional in that they are not complete descriptions of how the world actually works and are subject to future revision; but at the same time they are robust frameworks that can be used to predict how experiments should behave with almost boring regularity. So, far from the colloquial usage of “theory” as speculation, “just a theory” is high praise in science.</p>

<p>The current understanding of evolutionary theory in all its scope and diversity is far more complex than Darwin himself could have ever envisaged. (As a geneticist, I’ve often wished I could have a cup of tea with him to show him how far his theory has grown, especially given his confusion about how heredity worked.) Our understanding of how evolution works has grown by leaps and bounds since the 1850s. What is remarkable is just how much Darwin got “right” given his time and place. His main hypotheses—that species descend from ancestral forms through descent with modification, that and natural selection acting on heritable variation is a significant force in that process—remains the core of modern evolutionary theory. We’ve added a lot of detail since then (population genetics, kin selection, neutral evolution/genetic drift, symbiosis, horizontal gene transfer, molecular exaptation, and so on),  but Darwin’s core ideas have produced a wealth of successful predictions. They were a very good “guess” that continues to pay rich scientific dividends.</p>

<p align="center"><img src="http://biologos.org/uploads/static-content/whale_breaching.jpg" alt="" height="379" width="570"  /></p>

<h3>Whale evolution: an example of converging lines of evidence</h3>

<p>One of the things I personally find quite enjoyable about evolutionary theory is the counter-intuitiveness of some of the predictions it makes. One example that is a personal favorite, and one I often use to illustrate how evolution makes sense of converging lines of evidence, is cetacean (whale) evolution. Let’s set up the “problem” that evolutionary biology forces upon us:</p>

<ul><li>Modern cetaceans are <em>mammals</em> – they nourish their young in utero through a placenta, give birth to live young, and feed newborns with milk – all features of standard mammalian biology.</li>
<li>Mammals are <em>tetrapods</em> – organisms with four limbs. Mammalian life shows up in the fossil record as an innovation within tetrapods, so mammals are “nested within the set” of tetrapod forms. Not all tetrapods are mammals (amphibians, for example) but all mammals are tetrapods.</li>
<li>Tetrapods are by and large <em>terrestrial</em> creatures. Having four limbs for locomotion is a distinctly land-based adaptation.</li></ul>

<p>The “problem”, of course, is that modern whales are emphatically not terrestrial, nor do they have four limbs – they have two front flippers and a tail, with no hind limbs in sight. Yet they are mammals, which forces evolution’s hand as it were. Evolution thus is dragged, under protest, to the prediction that modern whales, as mammals, are descended, with modification, from ancestral terrestrial, tetrapod ancestors. 
Instantly this prediction raises a host of uncomfortable questions: where did their hind limbs go? How did they acquire a blowhole on the top of their heads when other mammals have two nostrils on the front of their faces? How did they transition to giving birth in the water? What happened to the teeth of the baleen whales? What happened to the hair characteristic of mammals? and so on. In some ways, evolutionary thinking about whales creates more difficulties than it appears to solve.</p>

<p>And yet, these difficulties are the stuff of science. If indeed our “educated guess” of terrestrial, tetrapod ancestry for whales is correct, the evidence will show that these transitions, challenging though they may seem, did indeed occur on the road to becoming “truly cetacean”. </p>

<h3>Going out on a limb</h3>
<p>Anyone who has seen a modern whale skeleton in a museum and noted it carefully may have noticed that though whales lack hind limbs, they do have a bit of bone back there where the hind limbs ought to be. While this is suggestive of a <em>vestigial</em> characteristic (a feature in a modern organism that has a reduced role relative to the role the structure played in an ancestral species), it’s hardly a smoking gun for evolution. Still, it’s consistent with the idea.</p>

<p>When we look at the cetacean fossil record, we also see forms suggestive of a progressive loss of hind limb function and structure over time, as David Kerk and Darrel Falk have elegantly <a href="http://biologos.org/blog/evidences-for-evolution-part-2b-the-whales-tale">explained before</a>. Again, if one were resistant to evolutionary explanations, it would be possible (if a bit strained) to interpret these creatures as having been created directly as we find them in the fossil record. The facts that we do not see these forms in the present day, and that they seem to blur the distinctions between terrestrial tetrapods and whales might make one a bit uncomfortable, however.</p>

<p>Recent work on cetacean embryogenesis (how whales and their relatives develop from fertilized eggs into fully-formed baby whales) has shed even more light on the issue for modern species, however. Dolphin embryos actually have four limbs early in their development, as well as a few facial hairs, just as any good mammal should have. The hind limbs and hairs are lost later in development, and work on the molecular signaling events that halt hind limb growth and cause the limb bud to regress into the body wall have now been worked out in some detail. Moreover, early in dolphin development the nostrils are distinct and on the front of the face, and only fuse into a blowhole and migrate to the top of the head later in development. Early dolphin embryogenesis is distinctly mammalian and uncannily tetrapod-like.</p>

<h3>… and passing the test</h3>
<p>Taken in isolation, these facts about whales are interesting trivia. Taken together, however, they begin to form a picture entirely consistent with the prediction that modern whales are derived from terrestrial ancestors. The true strength of evolution as a scientific theory for the origin of whales is this: not that we can prove it, (for no theory is ever proven in science due to its permanently provisional nature), nor that we have full access to every bit of data we would like (consider how fragmentary the fossil record is, for example), but rather that we haven’t been able to <em>disprove</em> it yet, despite our best efforts. Descent with modification remains a productive educated guess that grows stronger with each investigation.</p>

<p>In the next post in this series, we’ll explore some additional lines of evidence for cetacean evolution that further illustrate the predictive power of evolutionary theory.</p>

<h3>For further reading</h3>
<p><a href="http://biologos.org/blog/evidences-for-evolution-part-2a-the-whales-tale">Evidences for Evolution, Part 2a: The Whale's Tale</a><br />
<p><a href="http://biologos.org/blog/evidences-for-evolution-part-2b-the-whales-tale">Evidences for Evolution, Part 2b: The Whale's Tale</a><br />
J. G. M. Thewissen, M. J. Cohn, L. S. Stevens, S. Bajpai, J. Heyning, and W. E. Horton, Jr. (2006). Developmental basis for hind-limb loss in dolphins and origin of the cetacean bodyplan. Proceedings of the National Academy of Sciences 103 (22), 8414–8418. <a href="http://www.ncbi.nlm.nih.gov/pmc/articles/PMC1482506/pdf/zpq8414.pdf" target="_blank">available freely online</a>.</p>
]]></content:encoded>
        <pubDate>Thu, 05 Apr 12 05:15:22 -0700</pubDate>
        <dc:creator>Dennis Venema</dc:creator>
        <!--<dc:date>Apr 05, 2012 05:15</dc:date>-->
      </item>
            <item>
        <title>Series: Science as an Instrument of Worship</title>
        <link>http://biologos.org/blog/series/science&#45;as&#45;an&#45;instrument&#45;of&#45;worship?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/series/science&#45;as&#45;an&#45;instrument&#45;of&#45;worship?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>In this brief series (taken from a 2009 paper), Jennifer Wiseman uses an excerpt from the famous hymn “How Great Thou Art,” to explain why the study of God’s creation can lead Christ’s followers into meaningful worship and overcome the obstacles which impede true praise. Creation as encountered through our senses is pondered by our minds, which flows into wonder&#45;filled songs from the soul. She further explains how knowledge of creation will help Christians to address the moral dilemmas of science, and she encourages all to see the process of scientific inquiry as a means to discover God’s truth.</description>
        <content:encoded><![CDATA[<p><strong>Today's entry was taken from an article written by Jennifer Wiseman for the 2009 Theology of Celebration conference and published originally on our website in 2010; we are reposting it here. Here she shared her personal Christian perspectives on how churches can better incorporate science as a positive element of worship, service, and celebration.</strong></p>

<p class="intro">Jennifer Wiseman’s 2009 white-paper explained how a renewed engagement with science can enrich the church’s life of worship.  Part 1 of our series taken from that paper discussed stumbling blocks to such a renewal.  Part 2 began to describe how the Creation itself reflects the nature of God by displaying his power, creativity, beauty, patience, and faithfulness, all tied up in his character of love. This series concludes by connecting the knowledge of the world we get through scientific investigation with humanity’s Biblical mandate to exercise stewardship of God’s Creation.</p>

<h3>Science can inform us of what we need to do, as stewards of God’s Creation.</h3>

<p>Humanity faces tremendous moral dilemmas today, and science has relevance to most of them. As followers of Christ, we understand that our lives are entrusted to us for a short time, and that we will give an account for the things we do. So as stewards of our lives, and as disciples entrusted to build God’s Kingdom on Earth, it is essential to have knowledge and wisdom to shape the impact of our lives. Are we polluting the environment by our lifestyles? Clear studies of the relationship of how we live and the environmental impact on others are vital for God’s people. What about service? A well-intended project to provide irrigation or livestock for one needy people group may well end up polluting and destroying an ecosystem downstream.</p>

<p>Scientific understanding can foster wisdom for the best choices of lifestyles and service. And informed Christians can lead the pack in helping “science to inform science” when it comes to difficult ethical dilemmas. For example, farming systems that intensively confine animals may offer a promise from agricultural science of more food production to feed more people. But informed Christians can rightly cry foul, because the sciences of animal behavior and medicine clearly show that such confinement is inhumane and thwarts even minimal natural social and physical needs of animals, and environmental science shows that pollutants from such “factory farms” are devastating. The Biblical mandate for compassion for both people and animals is violated. Thus by combining compassion and prayer with broad scientific understanding, wisdom and clearer discernment will equip the Church for effective discipleship and social leadership.</p>

<p>There may be strong differences of opinion, between equally committed believers, as to the right use of science and technology. Should we genetically modify plants and animals, to provide a more abundant food supply? Should we design sophisticated weapons that can unintentionally destroy innocent lives? Should we use medical technology to prolong life at all costs? Such challenging issues can be an exercise in teaching God’s people how to be informed, how to articulate a viewpoint, and how to weigh respectfully the opinions and concerns of others, without necessarily condemning alternative points of view. In this way the Church can also set an example to the nation and the world of how healthy, respectful dialogue can foster productive progress in addressing difficult public issues.
But how important are these issues, if the return of Christ is eminent? This is a realm of theological understanding that can affect whether some churches consider stewardship of technology and environmental protection as an important mandate of God, or even relevant to the future, if in fact there may be no long-term future of the present Earth. This requires careful teaching on the balance between embracing Godly stewardship principles with the intent to bless the world now and for many, many generations to come, while at the same time becoming spiritually ready to join the Lord however soon that may take place.</p>

<p>There is yet another realm of Christian discipleship in science, and that is simply the joy of exploration for its own sake, or rather, as a means of discovering and sharing what God has done. Sharing the wonders of Creation, as scientific discovery reveals them, is a great service to others.</p>


<img src="http://biologos.org/uploads/static-content/Wiseman_earthrise.png" alt="" height="299" width="300"  />
<p class="date">(Earthrise: our beautiful, fragile planet, as seen from lunar orbit. 
Credit: NASA/Johnson Space Center)</p>

<p>Since I am an astronomer studying distant star-forming regions, and I work for our nation’s space exploration agency, I am sometimes asked by citizens of the public why we should spend any time or money on studies of outer space while there is so much human suffering on Earth: shouldn’t we solve the world’s problems first, before we spend money and effort exploring the oceans or the forests or distant galaxies? I have seen good people get very angry over what can appear to be completely unethical priorities; for instance should we send a probe to study Saturn when we could instead feed hungry children here on Earth? These dilemmas will always be present, and they are not simple. But I believe that God has called us to do BOTH: that is, to serve the poor and the suffering, AND to explore and study his Cosmos. In fact, it is those moments of great discovery and exploration, such as the first moon landing, or the Voyager images of Jupiter’s moons, or the historic first images from the Arctic explorers, that lift the human spirit and give us pause to contemplate the larger context and meaning of our lives. I have found kindred spirits, excited to learn about space, in both the western academic world and amongst the youngsters in impoverished, developing nations. Curiosity and wonder bring us together. We get a Biblical glimpse of this in Genesis, when God asks Adam to name all the animals. The text gives the sense of God’s pleasure as Adam sees the wondrous variety of creatures, and descriptively names each one.</p>

<p>And how should Christians view science and scientists? Since science is a systematic search for truth, and Christians believe that all truth is God’s truth, then there should be true appreciation for these “messengers” who devote their lives to understanding the details of God’s creation and who share their discoveries of scientific truth. Of course as human beings, scientists are sinful and fallible like everyone else. But the portrayal of science and scientists in the church should be a positive one. In fact, historically a great many leading scientists have done their work as explicit service to God (e.g., Blaise Pascal and Johannes Kepler). It should be no different today. Our congregations should encourage young people to go into science, and to see this (and all noble careers) as service to God. Imagine the difference it could make to the whole world if Christians would lead the use of science in a path compelled by love, compassion, and service!</p>
]]></content:encoded>
        <pubDate>Mon, 19 Mar 12 08:00:14 -0700</pubDate>
        <dc:creator>Jennifer Wiseman</dc:creator>
        <!--<dc:date>Mar 19, 2012 08:00</dc:date>-->
      </item>
            <item>
        <title>Vox Balaenae</title>
        <link>http://biologos.org/blog/vox&#45;balaenae?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/vox&#45;balaenae?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>In 1967, biologists Roger Payne and Scott McVay discovered that humpback whales “sing” and published recordings of the whales’ complex vocalizations, after which “whale song” quickly entered the popular consciousness and helped propel the “save the whales” environmental movement forward.</description>
        <content:encoded><![CDATA[<p>For the previous two weeks we’ve looked at artistic representations of whales (a <a href="http://biologos.org/blog/humpback-whales">poem</a> and a <a href="http://biologos.org/blog/making-the-whale">sculpture</a>), emphasizing the way earth’s largest creatures can embody the persistent mystery of Creation and the complex way we engage with the created world and with its Maker.  While those works touched on present and historical interaction between whales and people, today’s musical work brings together imaginative and symbolic associations with more explicitly scientific overtones.</p>

<p><em>Vox Balaenae</em>, or “Voice of the Whale,” was composed by American composer <a href="http://www.georgecrumb.net/" target="_blank">George Crumb</a> (b. 1929) and was first performed by the New York Camerata in 1971.  It was only four years before that, in 1967, that biologists Roger Payne and Scott McVay discovered that humpback whales “sing” and published recordings of the whales’ complex vocalizations, after which “whale song” quickly entered the popular consciousness and helped propel the “save the whales” environmental movement forward.  (In 1970, Folk singer Judy Collins even put out a version of the traditional melody "Farewell To Tarwathie" over a background of recorded humpback whale songs.)  For many, the fact that the massive creatures might share the human capacity and desire to engage in music as a social activity only made their wholesale destruction at our hands more egregious.</p>

<p>Though he was himself inspired by hearing those early whale song recordings, Crumb’s work does not utilize tapes of real whales or attempt merely to reproduce the effect in the context of an ordinary musical form.  Instead, he asks three chamber musicians with modified and electrically amplified instruments (piano, flute and cello) to create sounds that evoke the entire natural history of the sea.  The piano is played and strummed from inside the case and with a glass rod or plate on the strings, the cello part emphasizes a string’s abilities to produce high harmonic tones, and the flautist sings into her instrument as she plays.  Many of these effects are intended to suggest natural sounds—as in the cello’s "seagull effect" (audible at 5:59 in the video linked blow), and the whale-like beginning cadenza by the flute—but not always in a direct way.  In addition, all three players perform wearing half-masks, which, according to Crumb help “effac[e] the sense of human projection,” especially when they play under blue stage lighting as he envisioned.  (Most of these features can be seen and heard in this April 2011 performance in Montreal by Philippe Prud'homme, piano; Stephane Tetreault, cello  ; and Camille Lambert-Chan, flute, though it omits the blue stage lighting.)</p>

<p>In this multi-sensory impressionistic scene, the whales become representatives of a natural world that predates humanity, yet whose fate is inextricably bound up with the will of mankind.  Indeed, the tension between the measured vastness of geologic time and the “Age of Man” is written into the score, as an opening prologue is followed by variations on the initial “Sea Theme” (beginning at 4:20), each named after geologic epochs: Archeozoic, Paleozoic, Mesozoic, and finally, the Cenozoic.  It is in this last age—when mankind arrives on the scene—that the sometimes atonal and harsh combinations of sound reach a dissonant climax that the score indicates should be played as “dramatic, with a feeling of imminent destiny” (beginning at 11:26).  Finally, the piece moves towards its conclusion with a haunting restatement and renewal of the Sea Theme (at just after 13:00), with the musicians gradually playing more and more quietly until ending with a pantomime, as if creating sounds beyond the limits of human hearing. Again, the sense of resolution in the music is named by Crumb in the score’s instructions to the players: “serene, pure, transfigured.”</p>

<p>So what do we make of this musical narrative and what Crumb seems to be saying about both whales (standing—or swimming—for the natural world) and humankind?  Is it truly an anti-human statement, a “whales vs. people” image in response to environmental damage we were only really beginning to understand (via science) at the time the piece was written?  There is certainly a skepticism here about human hubris, made explicit at the end of the prologue section by a “parody” of the opening phrase of Strauss’ <em>Thus Spake Zarathustra</em> (at 2:40). Contemporary listeners then and now will likely recognize that borrowed theme as the music from the film <em>2001: A Space Odyssey</em> (1968), but before that it was a musical homage to Nietzsche’s view of ascendant Man.  In this ironic re-use of Strauss’ work, Crumb seems to say that against the span of geologic time and a vast (musical) world previously unknown to human ears, our claims of knowledge and technological mastery seem laughable.</p>

<p>Yet there are several clues that that sort of reading misses the mark, or that it is, at best, incomplete—beginning with the experience of playing and hearing it in person.  I first heard <em>Vox Balaenae</em> in about 2002 with my then 6-year-old son.  It was played in a small hall (under blue lights) at our local art museum by the Quadrivium Players, a group that included my friend <a href="http://www.richmondsymphony.com/musicians_details.asp?id=43" target="_blank">Mary Boodell</a> on the flute. While the masks were surprising at first, they did, indeed, de-emphasize the personality of the players as individuals, while emphasizing the atmospheric, world-creating power of art-forms, especially music.</p>

<p>Rather than a symbolic effacement of the human presence in the world (in keeping with the anti-Nietzschian not above), the effect was to move away from the ritualized performative aspect of modern chamber music and bridge the divide between players and observers, creating a more participatory community. Because of the piece’s distinctive, impressionistic kind of narrativity, one isn’t so much as “carried away by” the music as submerged and suspended in the world created by it, and Boodell describes the effect (especially at the end of the piece) of feeling like the audience is holding it’s breath to hear the silences Crumb has written into the score.</p>

<p>But Boodell also recounts the story of being drawn into the <em>conceptual</em> frame of the piece in a very physical, way when she found herself alone in a swimming pool in the weeks leading up to a performance.  Though hesitantly at first, she couldn’t help but wonder how the sounds she made in <em>Vox Balaenae</em> would sound underwater, and so went under in the pool to find out.  While the image makes one smile and probably reminds most of us of similar, less technically-proficient underwater experiments of our own, it also suggests how the piece helps hearers make a connection in addition to that between player and listener—that between humanity and the rest of the natural world.  If the unexpected flow and soundscape created by Crumb helps audience and players achieve the kind of connection music scholar Jeff Warren has <a href="http://biologos.org/blog/he-who-has-ears-music-neuroscience-and-evolution-part-3">elsewhere</a> on this site discussed as “entrainment,” it is also an invitation to a similarly compassionate state with the rest of creation, based on the new-found knowledge that other creatures have complex, even musical relationships with each other, and that we are privileged to discover and begin to understand them.</p>

<p>Clearly, then, Crumb’s <em>Vox Balaenae</em> touches on scientific knowledge of the world both in its genesis in recordings of whale songs and its structure keyed to geologic, evolutionary ages.  But does it have more to say to us here than that we should avoid killing whales because they sing? While we can recognize that the biblical call to have dominion over the earth guides us towards cultivation and care for its creatures and remember that Jesus exemplified such a shepherding role, we should also remember his priestly one, and ours.  For just as he remains the High Priest of heaven, holding our prayers in the presence of the Father, we have similar joy in being between heaven and earth, “a little lower than the angels.”  Thus we can hold up the great whales (and their songs) as monuments to the depth of God’s creative activity in and through nature—and even revel in our musical, creaturely fellowship with them—without denying the special place of humanity. On the contrary, we affirm that special place when we humble ourselves to listen, seek to understand the native tongues of creation, and then, through Christ, present its songs before the throne of the Almighty Creator and King.</p>

<p align="center"><iframe width="420" height="315" src="http://www.youtube.com/embed/4uU_5cg9dG8" frameborder="0" allowfullscreen></iframe></p>]]></content:encoded>
        <pubDate>Sun, 04 Mar 12 01:00:07 -0800</pubDate>
        <dc:creator>Mark Sprinkle</dc:creator>
        <!--<dc:date>Mar 04, 2012 01:00</dc:date>-->
      </item>
            <item>
        <title>Speciation and Macroevolution</title>
        <link>http://biologos.org/blog/speciation&#45;and&#45;macroevolution?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/speciation&#45;and&#45;macroevolution?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>A common challenge to evolutionary theory is that while life does indeed change over time (what is known as microevolution), no one has ever seen one species evolve into another species (macroevolution).</description>
        <content:encoded><![CDATA[<p align="center"><iframe src="http://player.vimeo.com/video/36997631?title=0&amp;byline=0&amp;portrait=0" width="570" height="428" frameborder="0" webkitAllowFullScreen mozallowfullscreen allowFullScreen></iframe></p>

<p>In our last two BioLogos podcasts, we looked at the question of <a href="http://biologos.org/blog/where-are-the-transitional-fossils">transitional fossils</a> and the <a href="http://biologos.org/blog/where-is-the-genetic-evidence-for-evolution">genetic evidence for evolution</a>. In our final installment of this three part series, we move on to the question of speciation and macroevolution. A common challenge to evolutionary theory is that while life does indeed change over time (what is known as microevolution), no one has ever seen one species evolve into another species (macroevolution). For example, no one has seen a dog evolve into something other than a dog. Because speciation has never been observed, and because science is based on observation, evolution cannot be considered scientific.</p>

<p>In fact, examples of speciation <em>have</em> been observed by scientists. We must also remember that we are able to observe just a tiny window of the long history of life on Earth, and the fact that any speciation has been noted at all is impressive indeed.</p>

<h3>Transcript</h3>
<p>It’s pretty clear to most of us that life can change over time.  For those who aren’t convinced, just take a quick trip to your local animal shelter.  Each of the dog breeds there, from the Great Dane to the Chihuahua, descended from a single ancestral population.  As you probably already know, that ancestral group was a wolf-like species. -How did these drastic changes take place?  Well, basically, genetic variation within that original population was acted upon by selective forces.  Now, just to be clear, the selection at work here wasn’t natural.  It was the result of breeding done over hundreds of years. But the basic principle is the same.  Genetic variation plus some sort of selection results in genetic change.  This is evolution.</p>

<p>For the most part we are ok with accepting this.  Yet many people still have a problem with the Theory of Evolution. Those suspicious of evolutionary Theory generally split evolution into two categories.  Instead of arguing that evolution is completely impossible, they will say something like, “I know microevolution is real, but I just can’t accept macroevolution.”</p>

<p>Kent Hovind, an especially outspoken opponent of evolutionary theory, often makes this argument in his presentations:</p>

<blockquote><p>“Maybe you’re talking about macroevolution. That’s where an animal changes into a different kind of animal. Nobody’s ever seen that. Nobody’s seen a dog produce a non-dog. I mean you may get a big dog or a little dog, I understand, but you’re going to get a dog, okay?” (<a href="http://www.youtube.com/watch?v=pYtrjvMX2Zk" target="_blank">source</a>)</p></blockquote>

<p>But what does this mean?  What is the difference between micro and macroevolution anyway, and why is one of them ok while the other is condemned?</p>

<p>Well, like many terms used in the evolution debate, the definitions tend to differ depending on who you talk to.  This can make rational discussion difficult. Most opponents of evolution, like Kent Hovind, say that macroevolution refers to one “type” or “kind” of organism evolving into another “kind”.  Microevolution, they might say, is evolution within a “kind”. Evolution of one dog breed into another, they would say, is microevolution.  Evolution of a “dog into a non-dog”, as Hovind puts it, would be “macroevolution.”’</p>

<p>One big problem with this argument is that “kind” is not clearly defined.  It is a subjective term referring to organisms that seem similar to each other.  Now, this is a definition that can easily be manipulated.  And it doesn’t work very well when asking scientific questions. Because there is disagreement about what they actually mean, the terms micro and macroevolution aren’t often used in scientific literature.  But when biologists do refer to “macroevolution”, most define it as “evolution above the species level”.</p>

<p>(Sources: <a href="http://ib.berkeley.edu/courses/ib200a/lect/ib200a_lect26_Lindberg_macroevolution.pdf" target="_blank">http://ib.berkeley.edu/courses/ib200a/lect/ib200a_lect26_Lindberg_macroevolution.pdf</a>, <a href="http://www.nescent.org/media/NABT/" target="_blank">http://www.nescent.org/media/NABT/</a>, <a href="http://evolution.berkeley.edu/evosite/evo101/VIADefinition.shtml" target="_blank">http://evolution.berkeley.edu/evosite/evo101/VIADefinition.shtml</a>, <a href="http://www.nhm.ac.uk/hosted_sites/paleonet/paleo21/mevolution.html" target="_blank">http://www.nhm.ac.uk/hosted_sites/paleonet/paleo21/mevolution.html</a>)</p>

<p>In other words, at the smallest scale, macroevolution is the development of a new species. This definition is more useful because you can objectively determine whether two organisms are members the same species, but “kind” has no specific definition.</p>

<p>So what does “species” mean anyway?  How is it different from “kind?”  Well, the term species can be hard to define.  Life is complex, and categorizing it into clear groups can be tricky.  The currently accepted definition of species comes from what we call the “biological species concept.”  Basically, the biological species concept says that a species is made of populations that actually or potentially interbreed in nature.</p>  

<p>So, two populations that cannot mate to produce successful offspring are by definition separate species. Now, this definition doesn’t always work.  For example, when you have a species that reproduces asexually, finding the boundaries between species can be a little tricky.  But in most cases it does a pretty good job.  It’s a good way to objectively determine where one species stops and another one begins.</p>  

<p>The Biological Species Concept is especially useful when you have two species that look and act very similar.  Eastern and Western Meadowlarks are a good example of this.  They look almost exactly the same.  But they cannot interbreed successfully.  Therefore, they are separate species. This definition also helps when we study evolution.  Where can we draw the line between microevolution and macroevolution?  Well, it’s never easy, but having a working definition of this thing called a species helps out a lot.  When enough genetic changes accumulate in a population, eventually it loses the ability to mate with others of its species.  Then, by definition, it becomes a new species.  In other words, macroevolution has occurred.</p>

<p>As we just discussed, many critics claim that macroevolution can never happen—one species can never cross over to become another one. This statement might sound valid, but a little bit of investigation shows that it is not well supported by evidence.  For one thing, the only difference between micro and macroevolution is scope.  When enough micro changes accumulate, a population will eventually lose its ability to interbreed with other members of its species.  At this point, we say that macroevolution has occurred.</p>

<p>The same processes—random mutation and natural selection—cause both micro and macro evolution.  There are no invisible boundaries that prevent organisms from evolving into new species.  It just takes time. Usually, the amount time required for macroevolution to occur is significant—on the order of thousands or millions of years. That’s why you don’t normally see brand new forms of life appear every time you step out your front door.  And that’s also why some people think that speciation never happens at all.</p>

<p>But sometimes macroevolution doesn’t take that much time.  In fact, the evolution of new species sometimes happens so quickly that we can actually see it take place!  Let’s look at a few recent examples.</p>

<p>Biologists Peter and Rosemary Grant had been studying finches since 1973.  They lived on an island called Daphne Major in the Galapagos.  It was here that they conducted their studies.  When they first began their studies, only two species of Finch lived on Daphne Major: the medium ground finch and the cactus finch.  But, in 1981, Peter and Rosemary noticed that an odd new finch had immigrated to the island.  It was a hybrid, a mix between a cactus finch and a medium ground finch.  It didn’t quite fit in with the other birds.  The odd misfit had an extra large beak, an unusual hybrid genome, and a new kind of song.  But somehow he was still able to find a mate.  The female was also a bit of a misfit and had some hybrid chromosomes of her own.  So their offspring were very different from the other birds on the island.</p>  

<p>Rosemary and Peter continued to carefully watch the odd hybrid line.  They wondered if the birds would become isolated from the other finch species on the island or if they would eventually re-assimilate.  After four finch generations, a drought killed off many of the birds on Daphne Major.  In fact, almost the entire hybrid line was exterminated.  Only a brother and sister pair remained.  The two family members mated with each other, producing offspring that were even more unique than their parent line.  From that point on, as far as biologists Peter and Rosemary could tell, the odd population of finches mated only with each other. They were never seen to breed with the cactus finches or the medium ground finches on the island. The finches with the strange song had become a brand new species.</p>

<p>(Source: <a href="http://www.pnas.org/content/106/48/20141.full" target="_blank">http://www.pnas.org/content/106/48/20141.full</a>)</p>

<p>Another example of speciation, or macroevolution, also took place on an island—this time, on the beautiful Portuguese island of Madeira.  According to history books, the Island of Madeira was colonized by the Portuguese about 600 years ago.  The colonizers brought with them a few unassuming European House Mice, which they accidentally left on the island. It’s also possible that a group of Portuguese House Mice was dropped off later on.</p>  

<p>Recently, Britton-Davidian, an evolutionary biologist at University Montpellier 2 in France, decided to collect samples of the Madeira mice and see how those original populations had changed over time. What she found was surprising. Rather than just one or two species of mouse, she found several.  In only a few hundred years, the original populations of Mice had separated into six genetically unique species.  The first mouse populations had 40 chromosomes altogether.  But the new ones were quite different. Each new variety had its own unique combination of chromosomes, which ranged in number from 22 to 30.</p>  

<p>What seems to have happened is that, over time, the mice spread out across the island and split into separate groups.  Madeira is a rugged volcanic island with crags and cliffs.  So it makes sense that this would have been easy to do.  There were many isolated corners for the mice to occupy.  Over time, random mutations occurred—some chromosomes became fused together.</p> 

<p>Now, In order to reproduce successfully, both parents must have the same number of chromosomes.  So when a population develops a chromosome fusion, suddenly that group cannot mate with the other members of its species.  It becomes a brand new species.  That’s exactly what happened on Madeira. And because of this phenomenon, 6 new species evolved from just 1 or 2 in an extremely short amount of time.</p>

<p>(Sources: <a href="http://onlinelibrary.wiley.com/doi/10.1111/j.1365-294X.2009.04345.x/full" target="_blank">http://onlinelibrary.wiley.com/doi/10.1111/j.1365-294X.2009.04345.x/full</a>, <a href="http://www.genomenewsnetwork.org/articles/04_00/island_mice.shtml" target="_blank">http://www.genomenewsnetwork.org/articles/04_00/island_mice.shtml</a>, <a href="http://www.nature.com/hdy/journal/v99/n4/full/6801021a.html" target="_blank">http://www.nature.com/hdy/journal/v99/n4/full/6801021a.html</a>)</p>

<p>Another fascinating example of macroevolution was recently observed by researchers at Pennsylvania State University. This time, two species combined to make a single new one.  In 1997, researchers at Penn State noticed a fruit maggot infestation on some recently introduced Asian Honeysuckle bushes. They decided to investigate the Honeysuckle fly population and determine how it was related to the other flies nearby. When they examined the honeysuckle fly’s genes, the researchers discovered something interesting.  The fly appeared to be a hybrid of two native species—the blueberry fly and the snowberry fly.</p>  

<p>But the honeysuckle fly’s genetic material was not an exact balance between that of the two parent species.  The ratios of DNA varied from fly to fly.  This showed the researchers that the honeysuckle flies had been breeding amongst themselves for many generations—probably at least 100.  Also, they found that the Honeysuckle Flies were very unlikely to breed with any other species. They bred only on their host Honeysuckle plants.  So they weren’t likely to mix with flies that lived on a different host.</p>
  
<p>According to Dr. Dietmar Schwarz, post-doctoral researcher in entomology, as far as the researchers can tell, “The new species is already reproductively isolated.  They seem to be in a niche on the brushy honeysuckle where the parent species cannot compete."</p>  

<p>(Source: <a href="http://www.psiee.psu.edu/news/2005_news/july_2005/hybrid_insects.asp" target="_blank">http://www.psiee.psu.edu/news/2005_news/july_2005/hybrid_insects.asp</a>)</p>

<p>While this kind of speciation—two species hybridizing to create a new one—seems odd, it is a significant mechanism of macroevolution.  And it’s especially common in plants. In fact, a new species of weed recently arose this way in Great Britain. In 1991, Richard Abbot, a plant evolutionary biologist from St. Andrews University, noticed an unusual weed growing next to a car park in York.  He discovered that the species, an unassuming scruffy weed, was a natural hybrid between the common groundsel and the Oxford ragwort, a plant that was introduced to Britain only 300 years ago.  The York Groundsel lives in a different niche, or microenvironment, than either of its parent species. It is able to breed and reproduce, but only with other York Groundsel plants.  It cannot successfully reproduce with any other species, including either of its parent plants.  Thus, by definition, the York Groundsel is its own new species.</p> 

<p>(Sources: <a href="http://www.nerc.ac.uk/publications/planetearth/2003/summer/sum03-evolution.pdf" target="_blank">http://www.nerc.ac.uk/publications/planetearth/2003/summer/sum03-evolution.pdf</a>, <a href="http://www.nature.com/hdy/journal/v69/n5/abs/hdy1992147a.html" target="_blank">http://www.nature.com/hdy/journal/v69/n5/abs/hdy1992147a.html</a>)</p>

<p>So, as we have seen, macroevolution is an established process. Usually it takes thousands of years to occur, but sometimes we get lucky and catch it in the act. When Kent Hovind said that, “no one has ever seen a dog produce a non-dog” he was technically quite correct.  But this statement infers that macroevolution means a drastic and obvious change from one type of organism into another.  Those who think this way believe that macroevolution is something like two dogs breeding to suddenly produce a cat, or two guinea pigs mating to produce a mouse.</p>

<p>But this is not how evolution works at all.  Over millions of years, a dog-like animal may indeed evolve into a something that looks completely unlike a dog.  However, this is not something that we would expect to be able to observe.  It just takes too much time.  To put the scale of evolution into perspective, consider this.  If the average lifespan of a United Stated citizen, 78 years, were a single minute, then single-celled life has been around for nearly 100 years.   On this scale, all we get to see is one minute.  And even in that time frame we sometimes see new species forming.  God’s time is not our time and we tend to forget this. What we do expect to observe is a very slow step-by-step accumulation of tiny genetic changes that eventually result in speciation.  And indeed, as we discussed today, this is exactly the sort of evidence revealed in nature.</p>

<p>So, macroevolution is not a “myth” by any means.  It is supported by a vast amount of evidence.  That evidence includes the fossil record and genetics, as discussed in previous BioLogos podcasts, and, when we get lucky, direct observation of speciation.  God, being who God is, could conceivably have created species out of thin air in a single instant.   But what if instead if God created and sustained the process by which new species are created?   Does that make him less powerful or less "god-like"?  Is it somehow more God’s process if it happened in an instant, than it is if it happened over a long period of time?   Presumably even if it happened in an instant, it would still happen by some sort of process—only faster.</p>  

<p>God’s time is not our time, and perhaps it’s a good idea for all of us to simply stand back in amazement while God does God’s work in God’s time through God’s process.</p>]]></content:encoded>
        <pubDate>Thu, 23 Feb 12 03:59:24 -0800</pubDate>
        <dc:creator>Kelsey Luoma</dc:creator>
        <!--<dc:date>Feb 23, 2012 03:59</dc:date>-->
      </item>
            <item>
        <title>Series: Evidences for Evolution</title>
        <link>http://biologos.org/blog/series/evidences&#45;for&#45;evolution?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/series/evidences&#45;for&#45;evolution?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>This technical series, co&#45;written by Darrel Falk and David Kerk, looks into the evidence for evolution in order to dispel doubts that people may have about this well&#45;supported theory. They look at three things specifically: the separate methods which reveal of the age of the earth, the unfolding history of whale evolution, and finally the common trends of heart development in vertebrates.</description>
        <content:encoded><![CDATA[<p>A literalistic view of Genesis causes many evangelicals to believe that the earth is less than ten thousand years old.  Christian children and young people frequently grow up being told that the earth is young and that evolution is a lie.  The most popular science/religion web-site by far according to <a href="http://www.alexa.com/siteinfo/answersingenesis.org" target="_blank">Alexa ratings</a> is “Answers in Genesis”, and its museum, dedicated to a young earth perspective has attracted over 1 million visitors since its opening two years ago.  Since evangelicals, we believe, are correct about so many other all-important issues, how can we be so certain that so many are so wrong about this one?     Consider sending this link to a young earth friend or pastor.  Some think that the science behind this matter can’t be trusted.  Nothing could be further than the truth.</p>

<p>The beauty of the scientific process is its inherent scepticism.  (See <a href="http://biologos.org/uploads/projects/benner_scholarly_essay.pdf" target="_blank">"What Scientists Do"</a> by Steven Benner).  If there is only one way of reaching a conclusion, the scientific process requires the scientist to remain highly sceptical.  The only conclusions in science which are widely accepted are those which are supported by multiple, reinforcing lines of evidence – “all roads must lead to Rome”.  If there is even one scientific trajectory that seems to clearly lead off to Peoria  instead of Rome (to use a recent analogy of Francisco Ayala), the scientific process demands that the scientist find out why.  The scientist who does not retain an attitude of scepticism when there is only a single line of evidence, and particularly one who ignores other, conflicting lines of evidence, is on a stubborn trajectory of  his own—a trajectory to failure. If the only reason for following the directions which “lead away from Rome” is a particular view of Scripture, then it is important to consider the possibility of human error.  Biblical hermeneutics, after all, is a human enterprise just as science itself is.  For example, John MacArthur in his current <a href="http://www.gty.org/Blog/B100507" target="_blank">series</a> on Genesis is human and is interpreting Genesis in his way just like the rest of us.   He, wonderful pastor  and shepherd that he is, interprets Scripture too.  There is good reason to be quite certain that the interpretation he subscribes to is mistaken.</p>

<p>As Christians, we are called to follow Jesus.  In so doing, Jesus said we are to love the Lord our God with all our heart, soul <u><em>and</em></u> mind—not just our heart and soul.  Indeed if we close our mind, we are actually disobeying what Jesus said was the greatest commandment of all.  So let’s not be shy about using those minds.  Are there multiple independent ways of keeping track of time since the creation of the earth?  If so, do each of those ways point to the same conclusion?</p>  

<p>The best known method of calculating the age of material on earth depends on the well-established fact that certain elements in the earth’s crust are unstable and decay at a fixed rate that can be measured.   (For an introduction to this topic see <a href="http://biologos.org/questions/ages-of-the-earth-and-universe/">this</a> BioLogos FAQ.)   This instability functions sort of like a set of clocks that have been ticking through the eons of time.  Indeed there are many types of unstable elements;  there are many ticking clocks.  Each of the various clocks tick at a different rate.  The rate of each can be calibrated, and, with an amazing degree of consistency, all “clocks” point back to the same starting  point: an ancient earth with rocks that are hundreds of millions and even billions of years old.  This “ticking clock” technique is known as radiometric dating.<sup>1,2</sup></p>

<p>There are other totally independent ways of estimating the age of material on earth.  To appreciate how these work, perhaps we should start with shorter spans of time, which for human beings are much more readily comprehensible.  Some of the fondest boyhood memories of one of us (DK) come from visits to the majestic California redwood forests.  He especially remembers an exhibit of a section from a giant tree which showed the pattern of growth rings within it.  It turns out that these rings accumulate in response to seasonal differences in rainfall and temperature, which in turn produces differences in growth rate.  Fastened within this huge slab of wood was a series of tags, proceeding from the surface inward, demonstrating the dates of major historical events: the landing of the Pilgrims on Plymouth Rock; Columbus’ discovery of the New World; the Norman conquest of England, and so forth.  It was possible to see in the yearly growth rings a history of what seemed then to be the very distant past!<sup>3</sup></p>

<p>Growth layering processes are not restricted to trees.  Many species of marine invertebrates accumulate calcium carbonate from their watery environment and incorporate it into some form of shell.  Examples would be clams and corals.  In fact, for these species, the variation in shell deposition occurs on a both a daily and a yearly basis, so an even finer counting of time periods is possible.<sup>4</sup></p>

<p>Just as it is possible to count the rings in trees and correlate their age to known historical events in the past, it is also possible to count the banding patterns preserved in the fossils of marine organisms, and use this as a method to estimate their ages.   Let’s see how it works.</p>

<p>Astronomical data, developed and analyzed over the past couple of centuries, has revealed that the rotation of the earth is gradually slowing down.  This is due to the friction created daily by the moving tides on the earth’s surface, produced by the gravitational pull of the moon and sun.  Furthermore, as the earth slows down slightly, some rotational energy is transferred to the moon, which alters its orbit slightly (its orbit is moving slowly away from the earth).  The data leading to these conclusions range from analysis of ancient solar eclipses (whose dating allows the precise position of the earth, sun and moon to be determined) to bouncing laser beams off mirrors placed on the surface of the moon by the Apollo astronauts.  For our purposes, what will be important is the slowing of the earth’s rotation.  This predicts that the length of each day has been slowly increasing since the formation of the earth/moon system. The average increase in the day length is estimated at 2.3 milliseconds (.0023 seconds) per century.<sup>5,6</sup>  Hence as we examine events in the past, day length was  shorter, by an amount that can be calculated.  Ten thousand years ago, a day would have been .23 seconds shorter than it is today. If direct experimental estimates of day length can be obtained, they allow an estimate of the age of the material.</p>

<p>One way that such experimental estimates of day length can be obtained is through the periodic growth rings deposited in the shells of marine invertebrate organisms.  Take for example a clam living in an intertidal environment.  If the tide is in and the shell is open, it can readily absorb oxygen from water, use aerobic metabolism, and incorporate calcium carbonate into its shells.  When the tide is out and the shells are closed, however, little oxygen can be absorbed, anaerobic metabolism is used, shell decalcification occurs, and organic rich material accumulates in the shell.  This alternating pattern of shell deposition occurs on a daily basis, and is clearly visible in both shells from living and fossil clam species by microscopic examination.  Furthermore, shells contain an identifiable mark resulting from the first freezing day of winter, and from the first really hot day of summer.  Hence a yearly growth interval can be readily determined.<sup>7</sup></p>  

<p>When such data are analyzed for a number of fossil species, it is clear that the number of days these organisms experienced each year was higher than today.   Given that, we have another clock - a totally independent way of measuring the age of certain fossils.  So how well do clocks  based upon radiometric dating  agree with those based on measuring rings in certain sea shells?</p>

<p>As already mentioned, organisms living 10,000 years ago would have experienced shorter days, but they would only have been shorter by 0.2 seconds.  Organisms living 1 million years ago would have experienced a day length that was 20 seconds shorter.  If the earth really is very, very old, organisms living 465 million years ago, for example, would have experienced approximately 416 days per year, each day being about 21 hours long.<sup>7</sup>  Amazingly, shelled fossils in formations dated by radiometric clocks to be about 465 million years old show, by their banding patterns, that the days really were three hours shorter.  In fact the two sets of clocks agree within 1 percent!</p>
  
<p>Another way such estimates of ancient day length can be derived is to look at the periodic patterns formed in fine silts in ancient river estuaries.  The daily tides produce shifts in the mud, leaving a fine layering pattern, which is recorded in rock as these sediments transform into materials such as sandstone (such deposits are called “rhythmites”).  Other shifts in the mud are produced over longer time intervals, including seasonal and yearly shifts.  By counting the number of daily depositional layers per year, in a similar fashion to work with marine organism shells cited above, an estimate of ancient day length can be derived.  One advantage of the rhythmite analysis method is that it can be applied to more ancient materials, in eras of the earth’s history when organisms suitable for shell analysis were scarce or non-existent.  For example, radiometric analysis of certain rock formations in South Australia dated them at 620 million years of age.  On this basis one would predict that the day/night cycles should have been about 20 hours long in these formations.  Actual measurements of day length from the preserved mud banding patterns, although off from the expected by ten percent (estimated day length is 22 hours) is again consistent with the formation being hundreds of millions of years old just as the radiometric dating has predicted.<sup>8</sup></p>

<p>In conclusion, there is data derived from three independent sources: the decay of radioisotopes, the growth patterns recorded in fossilized shells of marine organisms, and rocks containing tidal depositional material from river estuaries, which all agree on an ancient age for the earth.  Furthermore, by a totally independent method it is also possible to measure the age of  <a href="http://biologos.org/questions/ages-of-the-earth-and-universe/">the universe as a whole</a> and again it is billions, not thousands of years.</p>

<p>All of the roads in God’s book of Nature “lead to Rome” (i.e an ancient earth) - it is only mistaken human interpretation of Scripture that causes some of our precious brothers and sisters in Christ to end up in Peoria.</p>

<p class="intro">The next blog in this series can be found <a href="http://biologos.org/blog/evidences-for-evolution-part-2a-the-whales-tale/">here</a>.</p>

<p><strong>Editor's Note</strong>: Dr. Kerk offers a further discussion of the age of the earth in the comment section of this post, beginning <a href="http://biologos.org/blog/evidences-for-evolution-part-1-an-ancient-earth/#comment-15794">here</a>. Dr. Kerk has also included the following graph:</p>
<p align="center"><img src="http://biologos.org/uploads/static-content/age_day_length.jpg"></p>

<h3>References</h3>
<p>1: Elementary principles of radiometric dating are discussed by Richard Dawkins. Dawkins, R. 2009.  <em>The Greatest Show on Earth: The Evidence for Evolution</em>.  Free Press, New York Pgs. 91-98.</p>
<p>2: Wiens, R.C. 2002.  <em>Radiometric Dating: A Christian Perspective</em>.  This is a more detailed but still highly readable account of radiometric dating, written by a well-qualified physicist who is also a professing Christian.  It can be obtained from the web site of the American Scientific Affiliation: <a href="http://www.asa3.org/ASA/resources/Wiens.html" target="_blank">http://www.asa3.org/ASA/resources/Wiens.html</a></p>
<p>3: Tree ring dating (“dendrochronology”) is discussed by Dawkins, pgs. 88-91.</p>  
<p>4: Dating using coral skeletal deposition is discussed by Jerry Coyne: Coyne, J.A. 2009.  <em>Why Evolution is True</em>. Viking Penguin, New York.  Pgs. 24-25.</p>
<p>5: “Tidal Acceleration”, Wikipedia: <a href="http://en.wikipedia.org/wiki/Tidal_acceleration" target="_blank">http://en.wikipedia.org/wiki/Tidal_acceleration</a></p>
<p>6: Stephenson, F.R. 2003. Historical Eclipses and Earth’s Rotation.  <em>Astronomy and Geophysics</em> 44:2.22-2.27.</p>
<p>7: Zhenyu, Z., Yaoqi Z., Guosheng J. 2007. The periodic growth increments of biological shells and the orbital parameters of Earth-Moon system. <em>Environmental Geology</em> 51: 1271–1277.</p>
<p>8: Williams, G.E. 2000. Geological constraints on the Precambrian history of Earth's rotation and the Moon's orbit. <em>Reviews of Geophysics</em> 38(1):37-59.</p>

]]></content:encoded>
        <pubDate>Sun, 27 Nov 11 23:31:20 -0800</pubDate>
        <dc:creator>David Kerk, Darrel Falk, Falk, Darrel, Kerk, David</dc:creator>
        <!--<dc:date>Nov 27, 2011 23:31</dc:date>-->
      </item>
            <item>
        <title>Misconceptions About Evolution, Part 2</title>
        <link>http://biologos.org/blog/misconceptions&#45;about&#45;evolution&#45;part&#45;2?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/misconceptions&#45;about&#45;evolution&#45;part&#45;2?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>Evolutionary theory is not in crisis; scientists accept evolution as the best explanation for life&apos;s diversity because of the multiple lines of evidence supporting it, its broad power to explain biological phenomena, and its ability to make accurate predictions in a wide variety of situations.</description>
        <content:encoded><![CDATA[<p>The website <a href="http://evolution.berkeley.edu/" target="_blank">Understanding Evolution</a>, hosted by The University of California Museum of Paleontology, Berkeley, offers its readers numerous helpful resources regarding the science and history of evolutionary biology. The site’s stated goal is to “help you understand what evolution is, how it works, how it factors into your life, how research in evolutionary biology is performed, and how ideas in this area have changed over time.” Among its resources is a list of popular misconceptions about evolutionary theory. In this two part series, we’d like to highlight some of the site’s most helpful responses to these misconceptions. The full list, and many other wonderful resources, can be found at Understanding Evolution.</p>

<h3>Misconceptions about Evolution and the Nature of Science</h3>
<p><strong>“Evolution is not science because it is not observable or testable.”</strong></p>
<p>This misconception encompasses two incorrect ideas: (1) that all science depends on controlled laboratory experiments, and (2) that evolution cannot be studied with such experiments. First, many scientific investigations do not involve experiments or direct observation. Astronomers cannot hold stars in their hands and geologists cannot go back in time, but both scientists can learn a great deal about the universe through observation and comparison. In the same way, evolutionary biologists can test their ideas about the history of life on Earth by making observations in the real world. Second, though we can't run an experiment that will tell us how the dinosaur lineage radiated, we <em>can</em> study many aspects of evolution with controlled experiments in a laboratory setting. In organisms with short generation times (e.g., bacteria or fruit flies), we can actually observe evolution in action over the course of an experiment. And in some cases, biologists have observed evolution occurring in the wild.</p>

<p><strong>"Evolution is 'just' a theory."</strong></p>
<p>This misconception stems from a mix-up between casual and scientific use of the word <em>theory</em>. In everyday language, <em>theory</em> is often used to mean a hunch with little evidential support. Scientific theories, on the other hand, are broad explanations for a wide range of phenomena. In order to be accepted by the scientific community, a theory must be strongly supported by many different lines of evidence. Evolution is a well-supported and broadly accepted scientific theory; it is not ‘just' a hunch.</p>
<p>For more, see the question <a href="http://biologos.org/questions/what-is-evolution">"What is evolution?"</a></p>

<p><strong>"Evolutionary theory is invalid because it is incomplete and cannot give a total explanation for the biodiversity we see around us."</strong></p>
<p>This misconception stems from a misunderstanding of the nature of scientific theories. <em>All</em> scientific theories (from evolutionary theory to atomic theory) are works in progress. As new evidence is discovered and new ideas are developed, our understanding of how the world works changes and so too do scientific theories. While we don't know everything there is to know about evolution (or any other scientific discipline, for that matter), we do know a great deal about the history of life, the pattern of lineage-splitting through time, and the mechanisms that have caused these changes. And more will be learned in the future. Evolutionary theory, like any scientific theory, does not yet explain everything we observe in the natural world. However, evolutionary theory does help us understand a wide range of observations (from the rise of antibiotic-resistant bacteria to the physical match between pollinators and their preferred flowers), does make accurate predictions in new situations (e.g., that treating AIDS patients with a cocktail of medications should slow the evolution of the virus), and has proven itself time and time again in thousands of experiments and observational studies.</p>

<p>For more, see the questions <a href="http://biologos.org/questions/complexity-of-life">"How can evolution account for the complexity of life on earth today?"</a> and <a href="http://biologos.org/questions/cambrian-explosion">"How can evolution account for the complexity of life on earth today?"</a></p>

<p><strong>"Gaps in the fossil record disprove evolution."</strong></p>
<p>While it's true that there are gaps in the fossil record, this does not constitute evidence against evolutionary theory. Scientists evaluate hypotheses and theories by figuring out what we would expect to observe if a particular idea were true and then seeing if those expectations are borne out. If evolutionary theory were true, then we'd expect there to have been transitional forms connecting ancient species with their ancestors and descendents. This expectation has been borne out. Paleontologists <em>have</em> found many fossils with transitional features, and new fossils are discovered all the time. However, if evolutionary theory were true, we would not expect <em>all</em> of these forms to be preserved in the fossil record. Many organisms don't have any body parts that fossilize well, the environmental conditions for forming good fossils are rare, and of course, we've only discovered a small percentage of the fossils that might be preserved somewhere on Earth. So scientists <em>expect</em> that for many evolutionary transitions, there will be gaps in the fossil record. </p>

<p>For more see out question <a href="http://biologos.org/questions/fossil-record">"What does the fossil record show?"</a></p>


<h3>Misconceptions about the Acceptance and Implications of Evolution</h3>
<p><strong>“Evolution is a theory in crisis and is collapsing as scientists lose confidence in it.”</strong></p>
<p>Evolutionary theory is not in crisis; scientists accept evolution as the best explanation for life's diversity because of the multiple lines of evidence supporting it, its broad power to explain biological phenomena, and its ability to make accurate predictions in a wide variety of situations.  The vast majority of scientists do not debate <em>whether</em> evolution took place, but they do debate many details of <em>how</em> evolution occurred and occurs in different circumstances. Antievolutionists may hear the debates about <em>how</em> evolution occurs and misinterpret them as debates about <em>whether</em> evolution occurs. Evolution is sound science and is treated accordingly by scientists and scholars worldwide.</p>

<p>For more see the questions <a href="http://biologos.org/questions/evolution-and-the-second-law">"Does thermodynamics disprove evolution?"</a>, <a href="http://biologos.org/questions/complexity-of-life">"How can evolution account for the complexity of life on earth today?"</a> and <a href="http://biologos.org/questions/cambrian-explosion">"How can evolution account for the complexity of life on earth today?"</a></p>

<p><strong>"Evolution supports the idea that 'might makes right' and rationalizes the oppression of some people by others."</strong></p>
<p>In the nineteenth and early twentieth centuries, a philosophy called Social Darwinism arose from a misguided effort to apply lessons from biological evolution to society. Social Darwinism suggests that society should allow the weak and less fit to fail and die and that this is good policy and morally right. Supposedly, evolution by natural selection provided support for these ideas. Pre-existing prejudices were rationalized by the notion that colonized nations, poor people, or disadvantaged minorities must have deserved their situations because they were "less fit" than those who were better off. In this case, science was misapplied to promote a social and political agenda. While Social Darwinism as a political and social orientation has been broadly rejected, the scientific idea of biological evolution has stood the test of time.</p>

<p><strong>"Evolution and religion are incompatible."</strong></p>
<p>Because of some individuals and groups stridently declaring their beliefs, it's easy to get the impression that science (which includes evolution) and religion are at war; however, the idea that one always has to choose between science and religion is incorrect. People of many different faiths and levels of scientific expertise see no contradiction at all between science and religion.</p>

<p>In fact, science and religion can have a constructive relationship.  The majority of scientists during the emergence of modern science in medieval Europe, for example, were devout or conventionally religious.  Religious belief, then, can function as a framework within which scientific progress flourishes.  Religious belief can also be influenced by science.  In the Galileo Affair, scientific evidence of a heliocentric universe caused the church to revisit its interpretation of a part of Scripture.</p>

<p>Oddly enough, some people argue that God’s existence is actually a scientific claim and should be tested like any other. However, God’s existence is not something that can be tested by the scientific method in the same way the existence of postulated new elementary particles are tested in supercolliders. Because science provides knowledge about the natural world, no amount of testing or theorizing could prove or disprove the existence of a supernatural creator. Rather than an empirical claim about nature or its laws, the claim that God exists is a metaphysical one, a statement about what there is, whether it be natural or supernatural.</p>

<p>For more see the questions <a href="http://biologos.org/questions/science-and-religion">"What is the proper relationship between science and religion?"</a>, <a href="http://biologos.org/questions/scientific-and-scriptural-truth">"Can scientific and scriptural truth be reconciled?"</a>, <a href="http://biologos.org/questions/christian-response-to-darwin">"What were the initial Christian responses to Darwin?"</a>, and <a href="http://biologos.org/questions/evolution-and-divine-action">"What role could God have in evolution?"</a></p>


]]></content:encoded>
        <pubDate>Tue, 22 Nov 11 04:00:56 -0800</pubDate>
        <dc:creator></dc:creator>
        <!--<dc:date>Nov 22, 2011 04:00</dc:date>-->
      </item>
            <item>
        <title>Misconceptions About Evolution, Part 1</title>
        <link>http://biologos.org/blog/misconceptions&#45;about&#45;evolution&#45;part&#45;1?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/misconceptions&#45;about&#45;evolution&#45;part&#45;1?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>The website Understanding Evolution, hosted by The University of California Museum of Paleontology, Berkeley, offers its readers numerous helpful resources regarding the science and history of evolutionary biology.</description>
        <content:encoded><![CDATA[<p>The website <a href="http://evolution.berkeley.edu/" target="_blank">Understanding Evolution</a>, hosted by The University of California Museum of Paleontology, Berkeley, offers its readers numerous helpful resources regarding the science and history of evolutionary biology. The site’s stated goal is to “help you understand what evolution is, how it works, how it factors into your life, how research in evolutionary biology is performed, and how ideas in this area have changed over time.” Among its resources is a list of popular misconceptions about evolutionary theory. In this two part series, we’d like to highlight some of the site’s most helpful responses to these misconceptions. The full list, and many other wonderful resources, can be found at Understanding Evolution.</p>

<h3>Misconceptions about Evolutionary Theory and Process</h3>
<p><strong>"Evolution is a theory about the origin of life."</strong></p>
<p>Evolutionary theory <em>does</em> encompass ideas and evidence regarding life's origins (e.g., whether or not it happened near a deep-sea vent, which organic molecules came first, etc.), but this is not the central focus of evolutionary theory. Most of evolutionary biology deals with how life changed <em>after</em> its origin. Regardless of how life started, afterwards it branched and diversified, and most studies of evolution are focused on those processes.</p>
<p>For more, see our questions on <a href="http://biologos.org/questions/what-is-evolution">"What is Evolution?"</a> and <a href="http://biologos.org/questions/the-origin-of-life">"Isn't the Origin of Life Highly Improbable?"</a>.</p>

<p><strong>"Evolution is like a climb up a ladder of progress; organisms are always getting better."</strong></p>
<p>One important mechanism of evolution, natural selection, <em>does</em> result in the evolution of improved abilities to survive and reproduce; however, this does not mean that evolution is progressive — for several reasons. First, natural selection does not produce organisms perfectly suited to their environments. It often allows the survival of individuals with a range of traits — individuals that are "good enough" to survive. Hence, evolutionary change is not always necessary for species to persist. Many taxa (like some mosses, fungi, sharks, opossums, and crayfish) have changed little physically over great expanses of time. Second, there are other mechanisms of evolution that don't cause adaptive change. Mutation, migration and genetic drift may cause populations to evolve in ways that are actually harmful overall or make them less suitable for their environments. For example, the Afrikaner population of South Africa has an unusually high frequency of the gene responsible for Huntington's disease because the gene version drifted to high frequency as the population grew from a small starting population. Finally, the whole idea of "progress" doesn't make sense when it comes to evolution. Climates change, rivers shift course, new competitors invade — and an organism with traits that are beneficial in one situation may be poorly equipped for survival when the environment changes. And even if we focus on a single environment and habitat, the idea of how to measure "progress" is skewed by the perspective of the observer. From a plant's perspective, the best measure of progress might be photosynthetic ability; from a spider's it might be the efficiency of a venom delivery system; from a human's, cognitive ability. It is tempting to see evolution as a grand progressive ladder with <em>Homo sapiens</em> emerging at the top. But evolution produces a tree, not a ladder — and we are just one of many twigs on the tree.</p>

<p>For more, see our questions <a href="http://biologos.org/questions/what-is-evolution">"What is Evolution?"</a> and <a href="http://biologos.org/questions/inevitable-humans">"Did Evolution Have to Result in Human Beings?"</a>.</p>

<p><strong>"Evolution means that life changed 'by chance.'"</strong></p>
<p>Chance and randomness do factor into evolution and the history of life in many different ways; however, some important mechanisms of evolution are non-random and these make the overall process non-random. For example, consider the process of natural selection, which results in adaptations — features of organisms that appear to suit the environment in which the organisms live (e.g., the fit between a flower and its pollinator, the coordinated response of the immune system to pathogens, and the ability of bats to echolocate). Such amazing adaptations clearly did not come about "by chance." They evolved via a combination of random and non-random processes. The process of mutation, which generates genetic variation, is random, but selection is non-random. Selection favored variants that were better able to survive and reproduce (e.g., to be pollinated, to fend off pathogens, or to navigate in the dark). Over many generations of random mutation and non-random selection, complex adaptations evolved. To say that evolution happens "by chance" ignores half of the picture.</p>

<p>For more see our questions on <a href="http://biologos.org/questions/what-is-evolution">"What is Evolution?"</a> and <a href="http://biologos.org/questions/chance-and-god">"How do randomness and chance align with belief in God’s sovereignty and purpose?"</a>.</p>

<p><strong>“Humans are not currently evolving”</strong></p>
<p>Humans are now able to modify our environments with technology. We have invented medical treatments, agricultural practices, and economic structures that significantly alter the challenges to reproduction and survival faced by modern humans. So, for example, because we can now treat diabetes with insulin, the gene versions that contribute to juvenile diabetes are no longer strongly selected against in developed countries. Some have argued that such technological advances mean that we've opted out of the evolutionary game and set ourselves beyond the reach of natural selection — essentially, that we've stopped evolving. However, this is not the case. Humans still face challenges to survival and reproduction, just not the same ones that we did 20,000 years ago. The direction, but not the fact of our evolution has changed. For example, modern humans living in densely populated areas face greater risks of epidemic diseases than did our hunter-gatherer ancestors (who did not come into close contact with so many people on a daily basis) — and this situation favors the spread of gene versions that protect against these diseases.</p>

<p>For more see our question <a href="http://biologos.org/questions/inevitable-humans">"Did evolution have to result in human beings?"</a>.</p>

<p><strong>"Species are distinct natural entities, with a clear definition, that can be easily recognized by anyone."</strong></p>
<p>Many of us are familiar with the biological species concept, which defines a species as a group of individuals that actually or potentially interbreed in nature. That definition of a species might seem cut and dried — and for many organisms (e.g., mammals), it works well — but in many other cases, this definition is difficult to apply. For example, many bacteria reproduce mainly asexually. How can the biological species concept be applied to them? Many plants and some animals form hybrids in nature, even if they largely mate within their own groups. Should groups that occasionally hybridize in selected areas be considered the same species or separate species? The concept of a species is a fuzzy one because humans invented the concept to help get a grasp on the diversity of the natural world. It is difficult to apply because the term species reflects our attempts to give discrete names to different parts of the tree of life — which is not discrete at all, but a continuous web of life, connected from its roots to its leaves.</p>

<h3>Misconceptions about Natural Selection and Adaptation</h3>
<p><strong>“Natural selection involves organisms trying to adapt”.</strong></p>
<p>Natural selection leads to the adaptation of species over time, but the process does not involve effort, trying, or wanting. Natural selection naturally results from genetic variation in a population and the fact that some of those variants may be able to leave more offspring in the next generation than other variants. That genetic variation is generated by random mutation — a process that is unaffected by what organisms in the population want or what they are "trying" to do. Either an individual has genes that are good enough to survive and reproduce, or it does not; it can't get the right genes by "trying." For example bacteria do not evolve resistance to our antibiotics because they "try" so hard. Instead, resistance evolves because random mutation happens to generate some individuals that are better able to survive the antibiotic, and these individuals can reproduce more than other, leaving behind more resistant bacteria.</p>

<p><strong>“The fittest organisms in a population are those that are strongest, healthiest, fastest, and/or largest.”</strong></p>
<p>In evolutionary terms, <em>fitness</em> has a very different meaning than the everyday meaning of the word. An organism's evolutionary fitness does not indicate its health, but rather its ability to get its genes into the next generation. The more fertile offspring an organism leaves in the next generation, the fitter it is. This doesn't always correlate with strength, speed, or size. For example, a puny male bird with bright tail feathers might leave behind more offspring than a stronger, duller male, and a spindly plant with big seed pods may leave behind more offspring than a larger specimen — meaning that the puny bird and the spindly plant have higher evolutionary fitness than their stronger, larger counterparts.</p>

<p><strong>“Natural selection produces organisms perfectly suited to their environments.”</strong></p>
<p>Natural selection is not all-powerful. There are many reasons that natural selection cannot produce "perfectly-engineered" traits. For example, living things are made up of traits resulting from a complicated set of trade-offs — changing one feature for the better may mean changing another for the worse (e.g., a bird with the "perfect" tail plumage to attract mates maybe be particularly vulnerable to predators because of its long tail). And of course, because organisms have arisen through complex evolutionary histories (not a design process), their future evolution is often constrained by traits they have already evolved. For example, even if it were advantageous for an insect to grow in some way other than molting, this switch simply could not happen because molting is embedded in the genetic makeup of insects at many levels.</p>]]></content:encoded>
        <pubDate>Mon, 21 Nov 11 04:00:31 -0800</pubDate>
        <dc:creator></dc:creator>
        <!--<dc:date>Nov 21, 2011 04:00</dc:date>-->
      </item>
            <item>
        <title>What Does the Fossil Record Show?</title>
        <link>http://biologos.org/blog/what&#45;does&#45;the&#45;fossil&#45;record&#45;show?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/what&#45;does&#45;the&#45;fossil&#45;record&#45;show?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>Organisms have changed significantly over time. In rocks more than 1 billion years old, only fossils of single&#45;celled organisms are found. Moving to rocks that are about 550 million years old, fossils of simple, multicellular animals can be found.</description>
        <content:encoded><![CDATA[<p>Yesterday, in our <a href="http://biologos.org/blog/where-are-the-transitional-fossils">BioLogos podcast</a>, we looked at the question of transitional fossils. Today, to follow-up, we’d like to repost our recently revised FAQ on the fossil record – one of ten Questions we’ve updated. We’ve also edited how the Questions are organized, to help readers more easily find answers to the topics they care about, from explaining the BioLogos view to responding to arguments against God and Christianity. If you haven’t yet, we encourage you to <a href="http://biologos.org/questions">take a look at the changes!</a></p>

<p class="intro"></p>

<h3>Evidence of Gradual Change</h3>
<p>Organisms have changed significantly over time. In rocks more than 1 billion years old, only fossils of single-celled organisms are found. Moving to rocks that are about 550 million years old, fossils of simple, multicellular animals can be found. At 500 million years ago, ancient fish without jawbones surface; and at 400 million years ago, fish with jaws are found. Gradually, new animals appear: amphibians at 350 million years ago, reptiles at 300 million years ago, mammals at 230 million years ago, and birds at 150 million years ago.<a href="#note-1"><sup>1</sup></a> As the rocks become more and more recent, the fossils look increasingly like the animals we observe today.</p>

<h3>The Transition to Land: Sea Creatures to Land Animals</h3>
<p>Fossils of land animals, or <em>tetrapods</em>, first appear in rocks that are about 370 million years old. In older rocks, only sea creatures are found. But in 1998, scientists found a fossilized fin, 370 million years old, with eight digits similar to the five fingers humans have on their hands, as shown in Figure 1. However, the fin was undoubtedly that of a fish, which means this fossil is strong evidence of a transitional form.</p>

<p class="date"><img align="right" src="/uploads/questions/figure-image1-question25-small.jpg" alt="Figure 1: An Illustration of the fossilized fin found in 1998. Its resemblance to a Tetrapod is an indication of gradual evolutionary change from sea creatures to land animals. Source: Image is used by permission from Darrel R. Falk, &lt;em&gt;Coming to Peace with Science: Bridging the Worlds between Faith and Biology&lt;/em&gt; (Downers Grove, IL: InterVarsity Press, 2004), 113." class="img-right" />Figure 1:An Illustration of the fossilized fin found in 1998. Its resemblance to a tetrapod is an indication of gradual evolutionary change from sea creatures to land animals. Source: Image is used by permission from Falk, <em>Coming to Peace</em>, 113.</p>

<p>One of the great success stories in the examination of the fossil record was the finding of a near-perfect fossilized transition between a vertebrate adapted for water and one adapted for land. Evolutionary biologist Neal Shubin set out to find a more complete transitional specimen than the 1998 fin. He determined the exact age of rock that he expected would yield a transitional land/water animal, and then he and his team spent four summers in the Arctic scouring rocks of that age to find one. The results (see Figure 2 below) were spectacular.<a href="#note-2"><sup>2</sup></a></p>

<p align="center"><img src="http://biologos.org/uploads/static-content/tiktaalik_fig_2.jpg" alt="" height="305" width="567"  /></p>

<h3>From Reptiles to Mammals</h3>
<p>Mammals first appeared in the fossil record about 230 million years ago, nearly 70 million years after reptiles first appeared. One group of reptiles, the <em>cynodonts</em>, first appeared about 260 million years ago and became increasingly mammal-like in more recent fossils—circa 245 million years ago. This change can be seen most clearly in the bone structure of the ear, as illustrated in Figure 3.</p>

<p align="center"><img align="bottom" src="/uploads/Fig2.png" class="img-both" /></p>

<p class="date">Figure 3: As shown in the image above, transitional fossils of cynodonts had two jaw hinges. These fossils date from a time when the dentary and squamosal bones were beginning to take over the role of jaw hinge (hinge #2). This allowed the articular and quadrate bones to evolve into the second and third bones of the mammalian ear, as shown on the right. Source: Image used by permission from Falk, Coming to Peace, 119. Originally from F. H. Pough, J. B. Heiser, and W. N. McFarland, Vertebrate Life, 4th ed. (Upper Saddle River, NJ: Prentice Hall, 1996), 607.</p>

<p>Scientists found a species of <em>cynodonts</em>, dating to just before the emergence of mammals, that had a double jaw hinge like that of a mammal. A pair of bones found in even earlier cynodont fossils seems to have transitioned slowly into the ear. No other fossils have been found that share a similar structure to the transitional <em>cynodonts</em> and date back before the time of mammals. Likewise, soon after mammals appeared, these <em>cynodonts</em> became extinct. This timing implies that the <em>cynodont</em> fossils record the transition from reptiles to mammals.<a href="#note-3"><sup>3</sup></a></p>

<h3>Transitional Forms: Few and Far Between</h3>
<p>Transitional forms occur just when one might expect to see a change from one body type to another. However, a common objection is that few transitional fossils have been discovered; thus many lineages cannot be traced smoothly.</p>

<p>There are several reason for these gaps in the fossil record. First, fossilization is a very rare event. Plus, transitional species tend to appear in small populations, where rapid changes in the environment can provide a stronger evolutionary drive. Finally, because fossilization itself is a rare event, smaller populations are sure to produce fewer fossils. The fact that transitional species have been found at all is remarkable, and it offers further support of gradual, evolutionary change.</p>

<h3>Notes</h3>
<ol><li><a name="note-1"></a>Darrel Falk, <em>Coming to Peace with Science</em>, 83-84.</li>
<li><a name="note-2"></a>For a discussion of the science and the story of the discovery, see Darrel Falk, <a href="http://biologos.org/blog/in-the-bones">“In the Bones”</a> (July 29, 2009), (accessed 10/21/2011) and Stephen Matheson, <a href="http://biologos.org/blog/new-limbs-from-old-fins-part-2">“New Limbs from Old Fins, Part 2”</a> (Sept 16, 2011), (accessed 10/21/2011). Shubin’s 2008 book Your Inner Fish (Pantheon) is also very good.</li>
<li><a name="note-3"></a>Falk, <em>Coming to Peace</em>, 115–120; F. H. Pough, J. B. Heiser, and W. N. McFarland, <em>Vertebrate Life</em>, 4th ed. (Upper Saddle River, NJ: Prentice Hall, 1996), 607; M. J. Benton, <em>Vertebrate Palaeontology: Biology and Evolution</em> (London: Unwin Hyman, 1990), 228–231; E. H. Colbert, M. Morales, and E. C. Minkoff, <em>Colbert’s Evolution of the Vertebrates: A History of the Backboned Animals Through Time</em> (New York: Wiley-Liss, 2001), 274–277; T. S. Kemp, <em>The Origin and Evolution of Mammals</em> (New York: Oxford University Press, 2005), 75–78.</li></ol>

<ul><li><a href="#">Back to Top</a></li></ul>]]></content:encoded>
        <pubDate>Fri, 11 Nov 11 06:13:26 -0800</pubDate>
        <dc:creator></dc:creator>
        <!--<dc:date>Nov 11, 2011 06:13</dc:date>-->
      </item>
      

      

    
  </channel>
</rss>