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        <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/Human Origins,Genetics?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>2013-05-19T09:54:01-08:00</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>
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        <pubDate>Fri, 17 May 13 08:00:20 -0700</pubDate>
        <dc:creator>Dennis Venema</dc:creator>
        <!--<dc:date>May 17, 2013 08:00</dc:date>-->
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            <item>
        <title>Biological Evolution: What Makes it Good Science? Part 2</title>
        <link>http://biologos.org/blog/biological&#45;evolution&#45;what&#45;makes&#45;it&#45;good&#45;science&#45;part&#45;2?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/biological&#45;evolution&#45;what&#45;makes&#45;it&#45;good&#45;science&#45;part&#45;2?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>The Galápagos Islands were not a distinct “center of creation,” but a workshop for evolution in which an ancestral species made it to the yet uncolonized island and underwent a massive degree of speciation to adapt to the environment of the island. This is precisely what one would expect if the species of islands had arisen by evolution.</description>
        <content:encoded><![CDATA[<p>The second piece of evidence is found in living creatures, which are littered with the remnants of their ancestors’ ways of life.&nbsp; Bird and anteater embryos show tooth buds that are later absorbed and never erupt.&nbsp; Baleen whale embryos even develop teeth that are later resorbed.&nbsp; These are relics of their toothed ancestors.<sup>1</sup> Flightless kiwi birds have diminutive wings underneath their feathers, which testify to the ability of their ancestors to fly.&nbsp; Many cave-dwelling animals have rudimentary eyes that cannot see, even though eye development initiates in many of these species, but is later aborted.<sup>2</sup>&nbsp; The same can be said for the hind limbs of snakes, which form limb buds during embryonic development, but die off later.<sup>3</sup> All these are indications that they are descended from sighted and limbed ancestors, respectively.&nbsp;</p>

<p>Such remnants are also found in our genomes.&nbsp; Humans, unlike most mammals, cannot synthesize (make) our own vitamin C, but we carry the genes for synthesizing vitamin C.&nbsp; One of these genes encodes the GLO (L-gulonolactone oxidase) enzyme, and this gene in humans contains inactivating mutations and is therefore a “pseudogene.”&nbsp; This pseudogene and the genes that encode the enzymes of the vitamin C biosynthetic pathway are the remnants of our own evolutionary lineage from an ancestor that was able to synthesize its own vitamin C.<sup>4</sup> Furthermore, the GLO pseudogene is just one of a graveyard of inactivated genes, transposons, retroviruses and other non-functional sequences that litter our genome.&nbsp; While some of these sequences have been co-opted for particular functions, many of them have no known function.<sup>5</sup> We share many of these non-functional sequences with chimpanzees. &nbsp;The very presence of these genomic and anatomical flotsam and jetsam only makes sense if evolution has occurred.<sup>6</sup></p>

<p>A third piece of evidence for evolution comes from biogeography.<sup>7</sup> The flora and fauna of islands such as those of the Galápagos and Hawaii are radically unbalanced in that they lack many types of plants and animals but contain a profusion of clusters of similar species.&nbsp; Hawaii, for example, has no native mammals, reptiles, or amphibians, but a profusion of fruit flies and silversword plants.<sup>8</sup> One third of the 2,000 species of fruit flies are found on the Hawaiian Islands, which only covers 2 percent of the land on earth. &nbsp;These islands were never connected to the continents and arose as a result of volcanic activity and were, at least initially, completely uncolonized.&nbsp; The colonization of these islands occurred by means of occasional introduction of creatures from the mainland that then rapidly speciated on these islands to fill every available ecological niche.&nbsp; Thus, the organisms most closely related to island species come from the closest mainland areas, and often include those creatures most likely to find their way to islands, such as birds and flying insects.&nbsp;</p>

<p>The Galápagos Islands provide an excellent example of how biogeography provides evidence for evolution. The Galápagos have fourteen species of finch whose closest relative is probably the South American grassquit (<em>Tiaris</em>), yet only four of these finch species feed on seeds as finches normally do, while two others feed on cacti, seven eat insects, and another eats almost exclusively leaves.<sup>9</sup> Darwin, while visiting the Galápagos, still thought that species only varied within a particular kind (though he would not have used that terminology) but could adapt to various local environments and become particular subspecies. Therefore, he originally listed the warbler finch (<em>Certhidea olivacea</em>) as a wren and listed the small cactus finch (<em>Geospiza scandens</em>) as a member of the Icteridae or the family of meadowlarks and orioles.&nbsp; Only after Darwin had deposited his Galápagos specimens with the British ornithologist John Gould did Darwin discover (in a meeting with Gould that occurred during March, 1877), that his finch collection included thirteen or fourteen species of unusual finches that were all so closely related, Gould classified them in a single group all their own.&nbsp; This meeting showed Darwin that the immutable barrier between kinds of species did not exist.&nbsp; The Galápagos Islands were not a distinct “center of creation,” but a workshop for evolution in which an ancestral species made it to the yet uncolonized island and underwent a massive degree of speciation to adapt to the environment of the island.<sup>10</sup> This is precisely what one would expect if the species of islands had arisen by evolution.&nbsp;</p>

<p>A scientific theory also allows scientists to make predictions, and good theories provide accurate predictions.&nbsp; Can the theory of evolution allow accurate predictions?&nbsp; The answer, once again, is yes.&nbsp; Darwin himself predicted that the earth must be very old for evolution to occur.&nbsp; He did not know the age of the earth, but further research has shown that the earth is 4.55 billion years old, which is plenty of time for evolution to occur.&nbsp; Darwin also predicted that since plants on islands were most closely related to certain mainland plant species, the seeds of these plants should be able to withstand immersion in sea water for long periods of time, and again, Darwin was shown to be right.<sup>11</sup> Many decades after Darwin, we now know that variation in organisms is due to mutations in DNA and that these mutations are inherited, just as Darwin predicted.<sup>12</sup> Also, Darwin’s principle of natural selection predicts that particular sequences of DNA should behave in a manner that benefits only themselves and not their carriers, which modern research has thoroughly confirmed with the discovery of transposons and other types of “selfish DNA.”<sup>13</sup></p>

<p>Is evolutionary theory a good scientific theory?&nbsp; It has been repeatedly tested for over 150 years since its inception, and it has passed those tests successfully.&nbsp; The theory has been modified in response to new data, but the outlines of the theory have remained largely intact.&nbsp; It has existed at risk from new data.&nbsp; During the molecular biology revolution that began with the discovery of the structure of DNA by Franklin, Watson and Crick in 1953, the explosion of new data could have shown contemporary evolutionary theory to be wrong.&nbsp; However, some of the most powerful evidence for the theory of evolution has come from a field of science that did not even exist during Darwin’s time.&nbsp; The ability of a theory to withstand such intense scrutiny is a clear sign it is robust and enduring.&nbsp; As shown, the theory of evolution has predictive power, and it also integrates and makes sense of data from several fields of science, including ecology, paleontology, genetics, historical geology, paleoclimatology, and comparative anatomy and biochemistry.&nbsp; The highly integrative nature of evolutionary theory makes it a fine theory by any measure.&nbsp;</p>

<p>In conclusion, when measured against the standards of a good scientific theory, modern evolutionary biology clearly qualifies as good science.&nbsp; Ongoing debates within evolutionary biology exist about mechanism, rates, and causes, but not over whether evolution occurred.&nbsp; Such a question has been largely settled by the last 150 years’ worth of research.&nbsp; The future certainly looks bright for this field of science and I cannot imagine a more exciting topic to study.&nbsp;</p>

<h3>Notes</h3>

<p>1.&nbsp;Davit-Béal, Tiphaine,Abigail S. Tucker, and Jean-Yves Sire. “Loss of Teeth and Enamel in Tetrapods: Fossil Record, Genetic Data and Morphological Adaptations.” <em>Journal of Anatomy</em> 214, no. 4 (2009): 477–501.&nbsp;</p>

<p>2.&nbsp;Tian, Natasha M. M.-L., and David J. Price. “Why Cavefish are Blind.” <em>BioEssays</em> 27 (2005): 235–38; Yamamoto Y, Stock DW, and Jeffery WR (2004) Hedgehog Signalling Controls Eye Degeneration in Blind Cavefish. <em>Nature</em> 431:844–7; Jeffery, W. R. “Adaptive Evolution of Eye Degeneration in the Mexican Blind Cavefish.” <em>Journal of Heredity</em> 96, no. 3 (2005): 185–196.&nbsp;</p>

<p>3.&nbsp;Bejder, L., and B. K. Hall. “Limbs in Whales and Limblessness in Other Vertebrates: Mechanisms of Evolutionary and Developmental Transformation and Loss.” <em>Evolution and Development</em> 4, no. 6 (2002): 445–58.&nbsp;</p>

<p>4.&nbsp;Lachapelle, M. Y., and G. Drouin. “Inactivation Dates of the Human and Guinea Pig Vitamin C Genes.” <em>Genetica</em> 139, no. 2 (2011): 199–207.</p>

<p>5.&nbsp;Avise, John C. <em>Inside the Human Genome: A Case for Non-Intelligent Design</em>. New York: Oxford University Press, 2010.&nbsp;&nbsp; Romano, C. M., F. L. Melo, M. A. Corsini, E. C. Homes, and P. M. Zanotto.&nbsp; “Demographic Histories of ERV-K in Humans, Chimpanzees and Rhesus Monkeys.”<em> PLoS One</em> 2, no. 10 (2007): e1026. <a href="http://www.plosone.org/article/info%3Adoi%2F10.1371%2Fjournal.pone.0001026">http://www.plosone.org/article/info%3Adoi%2F10.1371%2Fjournal.pone.0001026</a>.&nbsp;</p>

<p>6.&nbsp;Max, “Plagiarized Errors and Molecular Genetics,” <a href="http://www.talkorigins.org/faqs/molgen">http://www.talkorigins.org/faqs/molgen</a>.</p>

<p>7.&nbsp;Coyne, Jerry A. “Intelligent Design: The Faith that Dare Not Peak Its Name.” In <em>Intelligent Thought: Science Versus the Intelligent Design Movement</em>, edited by John Brockman, 3–23. New York: Vintage, 2006.&nbsp;</p>

<p>8.&nbsp;Kricher, John. <em>Galápagos: A Natural History</em>. Princeton, NJ:&nbsp; Princeton University Press, 2006.&nbsp;</p>

<p>9.&nbsp;Grant, Peter R., and Rosemary B. Grant. <em>How and Why Species Multiply: The Radiation of Darwin’s Finches</em>. Princeton, NJ: Princeton University Press, 2011.&nbsp;</p>

<p>10.&nbsp;Sulloway, Frank J. “Why Darwin Rejected Intelligent Design.” In <em>Intelligent Thought: Science Versus the Intelligent Design Movement</em>, edited by John Brockman, 107–25. New York: Vintage, 2006.&nbsp;</p>

<p>11.&nbsp;Darwin, Charles.&nbsp;“On the action of sea-water on the germination of seeds.” <em>Journal of Proceedings of the Linnean Society of London</em> (Botany). 1 (1857): 130–140.</p>

<p>12.&nbsp;Futuyma, Douglas J. <em>Evolution</em>. 3rd ed. Sundbury, MA: Sinauer Associates, 2013.&nbsp;</p>

<p>13.&nbsp;Dawkins, Richard. <em>The Selfish Gene</em>. New York: Oxford University Press, 2006.</p>
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        <pubDate>Tue, 16 Apr 13 08:00:46 -0700</pubDate>
        <dc:creator>Michael Buratovich</dc:creator>
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        <title>Meet Jimmy Lin, “Medical and Scientific Doxologist”</title>
        <link>http://biologos.org/blog/meet&#45;jimmy&#45;lin&#45;medical&#45;and&#45;scientific&#45;doxologist?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/meet&#45;jimmy&#45;lin&#45;medical&#45;and&#45;scientific&#45;doxologist?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>In our current culture, we’re defined by our jobs. It’s having a vocation. I wanted to shift away from that. I didn’t want to be a doctor first and foremost, or a scientist, but one who praises God.</description>
        <content:encoded><![CDATA[<p><strong>EMILY RUPPEL: You had a lot on your plate when you spoke with Michael Hickerson in 2012. What are you up to now?</strong></p>

<p><strong>JIMMY LIN</strong>: Currently I’m on faculty at Washington University at St. Louis, where I am a research instructor in the pathology department. Also, a year and a half ago, I founded the <a href="http://www.raregenomics.org/">Rare Genomics Institute</a> (RGI)—a nonprofit that helps find cures for people with rare diseases.</p>

<p><strong>ER: What qualifies as a “rare disease”?</strong></p>

<p><strong>JL:</strong> These are diseases like cystic fibrosis and Huntingdon’s disease—diseases that affect less than 200,000 Americans each year. There are over 7000 different rare diseases, and less than 5% of them have any therapy. Altogether, they affect about 25-30 million people.</p>

<p>This creates what we call a “long tail problem”—it’s hard for a top-down research system to create research programs for all 7000 rare diseases. So instead, we are creating a bottom-up platform from which the patients themselves can create research projects and help fund them. We connect patients with physicians and researchers, customize a research program with top medical universities, design the experiment, and then use an online fundraising platform to fund the study through [mostly] friends and family of the patient.</p>

<p>Basically, we create a “foundation in a box.” By partnering with the Rare Genomics Institute, patients and their friends and families who want to study rare diseases don’t have to go through the hoops of creating their own nonprofit or lab—we do that for them. So, instead of creating 7000 different nonprofits, we create a generalized platform from which studies can be conducted.</p>

<p><strong>ER: Who qualifies for care through the Rare Genomics Institute?</strong></p>

<p><strong>JL:</strong> Anyone with a rare disease can come to us. The main thing we’re doing right now is diagnosis. When families come to us, they either don’t know the disease that’s affecting them or their child, or they don’t know the gene that’s wrong.</p>

<p>For instance, if a child had a condition that doctors couldn’t identify, his or her parents might come to us for help. What we’d do then is sequence the genes of the mother, father, and child, and compare them to reference genome to determine what mutations each of the parents have. Depending on what the disease is and what the gene causing it is, we can filter out mutations that don’t mean anything using the parents’ genomes—then, after filtering, we can potentially pinpoint the genes that fit the genetic pattern of the disease. This is the first step.</p>

<p>After that, we are building infrastructure to determine the effect of these changes and a way to help. For example, after looking at the literature, we can perhaps design experiments using cells extracted from the patient; this part of the process is different for every disease. Then, if we can determine that there is, for instance, a pathway missing a specific enzyme, we can try using drugs, a bone marrow transplant, or gene therapy to try to put healthy cells into the child… But there’s a variety of diseases, of course, so there’s a variety of different approaches—and we’re just starting to explore these aspects.</p>

<p><strong>ER: How did RGI get started?</strong></p>

<p><strong>JL:</strong> It really started when I was in medical school at Johns Hopkins—there was this boy that came to our clinic to be seen. My research was in cancer genome sequencing, and the family had come to our department looking for answers about what was wrong with their son. At that point, the family was almost hopeless—they had gone to so many doctors, run so many tests—I decided I wanted to try to help children like this. That’s when my friends and I decided to start the Rare Genomics Institute.</p>

<p>Currently, there are about 50 researchers associated with the organization, and we are all volunteers. It’s growing much, much faster and been more amazing than we’ve ever imagined—we’re already making an impact. In May of last year, we were able to discover a new disease using the world’s first crowd-sourced, crowd-funded genome. Working with researchers at Yale, we delineated a disease of which our patient was the first identified.</p>

<p>Right now, we’re in the middle of raising funding and hiring staff to make this organization one that is self-sustaining, and to increase its impact even more.</p>

<h3>Excerpts from Michael Hickerson Interview</h3>

<p><strong>MH: …you call yourself a doxologist. What’s the full term you used in your Jubilee bio?</strong></p>

<p><strong>JL</strong>: Medical and scientific doxologist.</p>

<p><strong>MH: How did you decide on that term and what does it mean to you?</strong></p>

<p><strong>JL:</strong> I listen to a bunch of teaching by <a href="http://en.wikipedia.org/wiki/J._I._Packer">J.I. Packer</a>&nbsp;, who teaches theology at Regent College and is one of the leading thinkers on these things. Interestingly, before any one of his classes, he says “Theology is for doxology,” and then the whole class sings the Doxology together out loud in class. I thought, “Wow, that is so great,” because everybody sometimes learns theology just for intellectual things [instead of for worship].</p>

<p>That’s not just true for theology, it’s for everything: biology is for doxology; chemistry is for doxology. That’s when I started to think, I should consider myself, first and foremost, as a person who praises God in what I do. And then no longer make “Christian” the adjective, right? “Doxologist” is the noun. But then what kind of doxologist am I? So I call myself a medical and scientist doxologist. I would call someone, for example, in the marketplace, a business doxologist. Or, someone who does art, an artistic doxologist. To really have the noun as our identity, and then our vocation as just a descriptor of how we do that.</p>

<p><strong>MH: That’s a great point. A noun is always stronger than the adjective. So, you want that to be the focus, rather than the add-on.</strong></p>

<p><strong>JL:</strong> In our current culture, we’re defined by our jobs. It’s <em>having</em> a vocation. I wanted to shift away from that. I didn’t want to be a doctor first and foremost, or a scientist, but one who praises God. And evidently, within science you don’t want to call yourself a Christian Scientist. That’s another religion, so . . .</p>

<p><strong>MH: [laughs] That’s right. I run into that, as well, when I’m teaching or talking about science to Christians. You always run into that stumbling block.</strong></p>

<p><strong>JL: </strong>With “scientific doxologist,” people don’t confuse them. You do have to explain what it means. And that gets in a little story actually, on what it means about vocation. It’s a small lesson — a teaching point when you do talk to people about vocation and calling. That’s why I use it.</p>

<p><strong>MH: I guess my final question would be what spiritual practices help sustain you? What helps you stay in contact with God and keep a good foundation?</strong></p>

<p><strong>JL:</strong> First, I am interested in many, many different things. I sort of mix it up in terms of spiritual practices. Besides the fundamentals, of course, of quiet time, devotional reading, and scriptural reading, I do theological study because I have to do that academically. I find a lot of time with God through the spiritual disciplines, such as times of solitude — which is very interesting for someone who is in academics to no longer think about ideas but just to be quiet before God — how silence, time to think by yourself, or sitting in silence is also something you should foster.</p>

<p>In terms of spiritual formation, what you really need is definitely a good community of people. I have a very supportive community at my church. I’m the deacon of devotions, so that of course keeps me on track. It encourages me as I, in my own spiritual walk, encourage other people. Fundamentally, I think for all Christians, whether you are academic or no matter your vocation or calling, being in the Word and prayer are the most important things. Doing that and being spiritually fed is what is important.</p>
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        <pubDate>Mon, 25 Mar 13 08:33:45 -0700</pubDate>
        <dc:creator>Jimmy Lin, Ruppel, Emily</dc:creator>
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        <title>Genes, Cells, and the Changing Face of Technology, Part 1</title>
        <link>http://biologos.org/blog/genes&#45;bacteria&#45;and&#45;the&#45;changing&#45;face&#45;of&#45;technology&#45;part&#45;1?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/genes&#45;bacteria&#45;and&#45;the&#45;changing&#45;face&#45;of&#45;technology&#45;part&#45;1?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>Right on this tabletop, you could make materials that by current manufacturing processes would otherwise cause a great amount of environmental hazard … In 50 years, we should be able to do things in ways we don’t do them now, that will be cheaper, less toxic, less polluting, more efficient, and so forth…</description>
        <content:encoded><![CDATA[<p><strong>EMILY RUPPEL: You’ve said that as technology in the 20th century was influenced by chemistry and physics, in the 21st century, it’s going to be influenced by biology. Can you give us a sense of what that future might look like?</strong></p>

<p><strong>DOUG LAUFFENBURGER</strong>: It could look like a lot of things. One way to envision what I mean is to put yourself back a hundred years. For instance, in 1913, an electronic computer was unimaginable. But using physics, quantum physics, leading to semiconductors and devices like that, people figured out over the next 20 to 30 years how you could build a machine to do calculations and so forth. And then, of course, all sorts of thing happened…</p>

<p>We’re roughly at that stage with biology, even though it seems like things are more imaginable because—and we don’t have to go strictly century by century here—because we can already guess the way some things might change, whereas in 1913 there was no inkling, really, as to what would happen in the computer revolution.</p>

<p>So, to enumerate some of the things that are conceivable—let’s just start with computers, because we were just there.</p>

<p>There’s a notion that computers get faster and cheaper by making their logic gates smaller, and how you improve a design with physics keeps bumping up against how you make these little units smaller. Well, using biology, the solution seems self-evident—you just line up the pieces of DNA, and if you put the right pieces of DNA in the right places, the resulting parts are so much smaller than the things we can do with physics. You can imagine, even though it’s just a theory now, computers continuing to become many times smaller and cheaper—and be made via environmentally benign manufacturing processes—through biomolecular construction.</p>

<p>Now that’s exciting from one point of view, but from another, it’s not that revolutionary, because you’re just using DNA as a piece of physics. It’s not really biology—it’s merely a biological molecule being used to make better physics.</p>

<p>For a different example, if you think about the way we make things, the way we manufacture plastics, gasoline, energy—we have to do all that using chemistry, and to make that chemistry happen, we have to input a lot of energy—in fact, one of the most costly industries in terms of energy usage <em>is</em> the energy industry. You have to put in so much energy to refine petroleum and things like that. And to make plastics, ceramics—things of that nature—is also very energy intensive, and it’s also where a lot of pollution comes from, because you’re mixing together all these chemicals that really didn’t want to be mixed together. You get what you want, but you get a lot of byproducts, toxins, etc.</p>

<p>Well, people have started to realize that a lot of this work can be redone through the use of biology. You can turn corn into fuel or plastic, and you can make magnetic or electrical storage devices out of biological units (viruses can pattern the crystals, so instead of using mixtures of toxic chemicals, you just pull the viruses with the right properties together). Right on this tabletop, you could make materials that by current manufacturing processes would otherwise cause a great amount of environmental hazard.</p>

<p>As for another exciting development—well, to preface, one of the problematic things about modern agriculture is the necessity of using fertilizers (there are insecticides to be concerned about, too), but fertilizer manufacturing is terrible for the environment. You have to make fertilizer out of ammonia and that’s a horribly polluting and energy-intensive manufacturing process. What you could potentially do, instead, is program into bacteria the genes that take nitrogen out of air, turning it into organic nitrogen then just scatter the bacteria onto the field—and you wouldn’t need to <em>make</em> ammonium using the current very caustic processes.</p>

<p>These are the sorts of things I mean—and we haven’t even touched on medicine, yet. People tend to think about medicinal advances, first, but before you even get to medicine, you can think about energy, manufacturing, materials, and agriculture. In 50 years, we should be able to do things in ways we don’t do them now, that will be cheaper, less toxic, less polluting, more efficient, and so forth.</p>

<p><strong>ER: A lot of people are nervous about the idea of “programming” life. Can you respond to this fear as a Christian?</strong></p>

<p><strong>DL</strong>: As a Christian, I would say that God gave humankind dominion over the earth, to do good things—he gave us minds, a passion for understanding how things work, and then he put in this world all these fascinating processes, which, if we figured them out, we could do good things, could feed more people—could feed more people without causing extensive damage to the environment. And cure disease and injury. And the list goes on. I think all that is good, and that God would be pleased that we would be using His creation to live better—I’m not saying more luxuriously, but more happily, contentedly, with each other.</p>

<p><strong>ER: But back to the topic—advances using biology in the next century. You had just mentioned medicine…</strong></p>

<p><strong>DL</strong>: So, yes, there’s also medicine. Now, obviously, in thinking about this, the use of stem cells comes to immediately the fore. There are a lot of diseases out there that you really <em>do</em> need to correct using cellular processes. Right now, we try to make these corrections through chemistry. For instance, we give you a pill, and that pill should interfere with something that’s going wrong in your body—and yet it’s really never adequate to just <em>interfere</em> with something that goes wrong in the body, because you don’t really set it right just by getting in the way of it.</p>

<p>The opportunity with stem cells is that you can say, “I’ll replace the cells in the body that are doing something wrong with cells that are actually doing it right again.” If you program cells to be neurons, heart cells, or bone cells, you can <em>regenerate</em> properly functioning physiology. Rather than, say, replacing a hip with a metal part, you could regenerate the bone, itself, or you could regenerate neurons in Alzheimer’s patients. Never in the past has medicine been able to regenerate a proper physiology; it’s only tried to replace it with an inadequate surrogate, or minimize how much damage a disease is doing. With the use of stem cells, you can actually imagine returning the body to its proper physiology.</p>

<p>A different use of stem cells is to generate human tissue in the laboratory for better studies of human physiology and pathology and improved testing of drug effectiveness and toxicity.&nbsp; This will be a major advance over animal models, because of the significant disparities between animal physiology and human physiology.</p>

<p>A key point to emphasize is that there are different kinds of stem cells, which involve big differences in potential concerns. For Christians, clearly, stem cells derived from embryos present a tremendous ethical issue. Fortunately, a good proportion of stem cell technologies can be pursued using stem cells from adult tissue. These cells can be stimulated to develop into certain tissue-specific physiological behavior, or can now even be “re-programmed” to become quite similar to the more broadly flexible stem cells derived from embryos but now not requiring the embryonic source. Happily, the days of reliance on embryo-derived stem cells appear to be over for purposes of beneficial technologies.</p>

<p>We also should consider genomic medicine, and what’s attractive about that field is that with the way we do medicine now, which is chemistry-based—say you have a disease, and we might give you a pill to correct it—well, the biggest problem with that is that while I think this pill will help ameliorate your condition, maybe it won’t. Maybe that drug only works in ten percent of the patients and not ninety percent.</p>

<p>For example, consider cancer. You’ve got a particular kind of cancer, and we prescribe a certain treatment… well, <em>hopefully</em> you’re among the lucky ten percent, and you’ll be in much better shape in two or three years. If you’re not, then we’ve wasted your time. In fact, we’ve probably hurt you rather than helped you, because we’re using chemistry to interfere with things, and even though we might be reducing the damage of some things, we’re probably causing toxicity elsewhere in the system, because that same chemistry is also interfering over there.</p>

<p>So the value of genomic medicine is to get enough information about you through sequencing your genome that we can say, “Ah, for you this particular pill is not a good idea; it will actually do more damage than good. But for your brother, it’s likely to work, and the ratio of benefit to harm is much better.” This is the reason genomic medicine is more imminent—it’s what’s closest on the horizon to being realized—because we can use the same drugs we have now, we’ll just be using them more effectively. At the moment, we can sequence genomes, and we do have these treatments that help, and it’s just a matter of matching up these two technologies.</p>

<p>Now, on the other hand, when you think about genome sequencing, you can find out all sorts of things, and you have to decide, “What if I learn something negative?”</p>

<p><strong>EDITOR’S NOTE</strong>: Join us next week as we continue the conversation about genomic medicine, bioengineering, and being a Christian in science.</p>
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        <pubDate>Tue, 12 Mar 13 08:00:34 -0700</pubDate>
        <dc:creator>Doug Lauffenburger, Ruppel, Emily</dc:creator>
        <!--<dc:date>Mar 12, 2013 08:00</dc:date>-->
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        <title>Humanity as and in Creation</title>
        <link>http://biologos.org/blog/humanity&#45;as&#45;and&#45;in&#45;creation?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/humanity&#45;as&#45;and&#45;in&#45;creation?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>Christian theology asserts that humans are spiritual creatures, a unity of body and spirit or “soul,” integrated, not reducible downwards to mere matter or upwards to mere spirit.</description>
        <content:encoded><![CDATA[<p>The second chapter of Genesis offers an enduring image for the creation of humanity: “the LORD God formed a man from the dust of the ground and breathed into his nostrils the breath of life, and the man became a living being.”</p>

<p>What does it mean for humanity to be created “from the dust of the ground?”</p>

<p>In many ancient Mesopotamian creation stories, human beings were depicted as deriving from some physical part of the gods. Often this was the result of conflict: humans arose from the blood, flesh or tears of gods slain by other gods. Humans created in this fashion were supposed to serve the gods by performing menial work that the gods had tired of doing themselves. The lot of humanity, then, was one of violence and servitude.</p>

<p>In the Israelite creation stories reflected in Genesis 1 and 2, however, humans are made from the ordinary material of creation: “dust.” Humans are made of earth-stuff, not god-stuff.</p>

<p>At first glance, it may seem that this lowers the status of the human creature. We might ask the question raised by Eliphaz in the book of Job:</p>

<blockquote><p>Can a mortal be more righteous than God?<br />
Can even a strong man be more pure than his Maker?<br />
If God places no trust in his servants,<br />
if he charges his angels with error,<br />
how much more those who live in houses of clay,<br />
whose foundations are in the dust, who are crushed more readily than a moth! (Job 4:17-19)</p>
</blockquote>

<p>Indeed, our humble origins ought to remind us of the fragility of our lives. As the Psalmist says,</p>

<blockquote><p>You turn people back to dust, saying, “Return to dust, you mortals.”<br />
A thousand years in your sight<br />
are like a day that has just gone by,<br />
or like a watch in the night.<br />
Yet you sweep people away in the sleep of death—<br />
they are like the new grass of the morning:<br />
In the morning it springs up new,<br />
but by evening it is dry and withered.</p>
</blockquote>

<p>The elements of which our bodies are made are ordinary and abundant. Science tells us that approximately ninety-three per cent of the mass in a living human body is comprised of elements first formed through nuclear fusion in the hearts of stars. Through almost unimaginably vast and ancient cycles of stellar formation and supernova explosions, this “stardust” of elements has been spread throughout the universe. It is as though God scattered the stars across space and time to seed the universe for life, including your life and mine. And we are thereby inseparably connected to each other, to the air we breathe, to the ground we tread, to all the creatures that fill the skies and crawl upon the earth and teem in the seas, to the depths of all the heavens. We are not transcendent of creation. We are creatures.</p>

<p>Yet we are creatures into which God breathed the “breath of life.” We are stardust and more than stardust. We are not reducible to our constituent chemicals. A “man” or a “woman” is not just a gooey sack of water, carbon and trace elements. Hydrogen, oxygen and carbon are not aware of their own existence. These elements cannot reason or pray or love or write poems. Conjunctions of these elements cannot carry any persistent identity across time. They do not exercise will or intentionality or agency. They are not “selves.”</p>

<p>Most of the cells in a human body are in constant flux: aging, dividing, dying, being replaced. The surface layer of human skin is renewed completely about every two weeks. An adult’s skeleton is entirely remade over approximately ten year periods. It may be that only the neurons of the cerebral cortex and a few other types of cells persist throughout the lifetime of a human body. And eventually, it all does return to “dust.”</p>

<p>Yet we think of ourselves as persisting over time, as comprising an “identity,” a “self.” Perhaps the cerebral cortex provides the stable biological platform for identity and selfhood, but something new emerges from the chemical-electrical soup, new patterns of organization, a different level of causation. We can even make choices that reshape ourselves, both physically and psychologically. The very wiring of our brains changes when we make conscious choices. Mind is both shaped by matter and supervenes on matter.</p>

<p>Materialists who wish to collapse all of human identity into brain chemistry overstep the bounds of “science.” A fundamental principle of scientific practice is testability: is it possible to demonstrate empirically whether a proposition is false ? As Saint Augustine observed many centuries ago, the fact that I acknowledge I could be “wrong” about something means that I am a “self” who is capable of making real choices about things that are in fact true or false. “<em>Si fallor, sum</em>” Augustine said – if I can doubt, if I can be wrong, then I must exist. One who is a true materialist “all the way down” cannot test his or her materialism. There is no possibility of “being” right or wrong, indeed no possibility of “being” – there is nothing but chemistry.</p>

<p>Spiritualists who wish to degrade matter in favor of the soul or spirit likewise are not expressing a Christian anthropology. Indeed, one of the first heresies that encountered the early Christian church was Gnosticism. A core belief of Gnosticism was that matter, including the human body, was essentially evil. Salvation for the Gnostics involved the soul’s escape from the prison of embodiment and materiality. The Gnostics treated the body either with disdain – engaging in extreme ascetic practices – or with antinomian abandon – engaging in extreme sexual license. Either way, their practices were rooted in the belief that matter and the body were unimportant. It’s easy to see how this view continually creeps into both our popular culture and our Church cultures.</p>

<p>Christian theology asserts that humans are spiritual creatures, a unity of body and spirit or “soul,” integrated, not reducible downwards to mere matter or upwards to mere spirit. Perhaps there is no better way to bring these themes together than with a Psalm — here is Eugene Peterson’s paraphrase of Psalm 139 in The Message:</p>

<blockquote><p>God, investigate my life; get all the facts firsthand.<br />
I’m an open book to you;<br />
even from a distance, you know what I’m thinking.<br />
You know when I leave and when I get back;<br />
I’m never out of your sight.<br />
You know everything I’m going to say<br />
before I start the first sentence.<br />
I look behind me and you’re there,<br />
then up ahead and you’re there, too—<br />
your reassuring presence, coming and going.<br />
This is too much, too wonderful—<br />
I can’t take it all in!</p>

<p>Is there any place I can go to avoid your Spirit?<br />
to be out of your sight?<br />
If I climb to the sky, you’re there!<br />
If I go underground, you’re there!<br />
If I flew on morning’s wings<br />
to the far western horizon,<br />
You’d find me in a minute—<br />
you’re already there waiting!<br />
Then I said to myself, “Oh, he even sees me in the dark!<br />
At night I’m immersed in the light!”<br />
It’s a fact: darkness isn’t dark to you;<br />
night and day, darkness and light, they’re all the same to you.</p>

<p>Oh yes, you shaped me first inside, then out;<br />
you formed me in my mother’s womb.<br />
I thank you, High God—you’re breathtaking!<br />
Body and soul, I am marvelously made!<br />
I worship in adoration—what a creation!<br />
You know me inside and out,<br />
you know every bone in my body;<br />
You know exactly how I was made, bit by bit,<br />
how I was sculpted from nothing into something.<br />
Like an open book, you watched me grow from conception to birth;<br />
all the stages of my life were spread out before you,<br />
The days of my life all prepared<br />
before I’d even lived one day.</p>
</blockquote>
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        <pubDate>Fri, 01 Mar 13 07:00:07 -0800</pubDate>
        <dc:creator>David Opderbeck</dc:creator>
        <!--<dc:date>Mar 01, 2013 07:00</dc:date>-->
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        <title>Series: The Human Fossil Record</title>
        <link>http://biologos.org/blog/series/human&#45;fossil&#45;record?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/series/human&#45;fossil&#45;record?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>In this series, James Kidder provides an intriguing study on transitional fossils and the evolutionary history of modern humans.  He begins by discussing the fossil record, explaining how new forms are classified. He then explains the physically distinguishing trait of humankind—bipedalism.  From the discovery of Ardipithecus, the earliest known hominin, to the australopithecines, the most prolific hominin, Kidder focuses on the discovery, the anatomy, and the interpretation of these ancestral remains.</description>
        <content:encoded><![CDATA[<p class="intro">This blog was originally posted on December 10, 2010. We think it was an important one.  Note though that it was posted shortly before the discovery of <a href="http://biologos.org/blog/a-geneticists-journey.html" target="_blank">Denisovans.</a>  So now one more red bar needs be added to the figure above.</p>

<h3>Transitional Fossils</h3>

<p>Some time ago, the Discovery Institute’s Casey Luskin <a href="http://www.evolutionnews.org/2010/03/smithsonians_new_human_origins033371.html" target="_blank">commented</a> on the human origins exhibit at the Smithsonian Institution, suggesting that palaeoanthropologists use evolutionary theory to describe the progression of the human lineage even when they don’t have transitional fossils with which to work.  He writes:</p>

<blockquote><p>What's ironic, however, is that if you ask the question How Do We Know Humans Evolved? the answer you’re given is, “Fossils like the ones shown in our Human Fossils Gallery provide evidence that modern humans evolved from earlier humans.” So whether you find fossils or you don’t, that’s evidence for evolution.</p></blockquote>

<p>Indeed, it has become an article of faith for those espousing both the young earth creation (hereafter YEC) model and many who hold to the intelligent design model that transitional fossils do not exist and therefore evolution has not taken place.  Support for this position usually entails attacking the weak areas of the fossil record, where burial processes have left us little with which to work, or the creation of straw men arguments in which transitional fossils are defined in such a way that none could ever be found.  Often this centers on the concept of “missing link,” a term that is habitually used in the popular press and young earth creation and intelligent design literature when referring to fossil remains but which has little to no meaning for biologists or palaeontologists.  As Ahlberg and Clack (Ahlberg and Clack 2006) write:</p>

<div class="see-also" id="phylo" style="display:none;">Phylogenetics is the study of evolutionary relatedness among organisms.</div>

<blockquote><p>But the concept has become freighted with unfounded notions of evolutionary ‘progress’ and with a mistaken emphasis on the single intermediate fossil as the key to understanding evolutionary transitions. Much of the importance of transitional fossils actually lies in how they resemble and differ from their nearest neighbours in the <a onmouseover="toggle_visibility('phylo');" onmouseout="toggle_visibility('phylo');">phylogenetic</a> tree, and in the picture of change that emerges from this pattern.</p></blockquote>

<p>Contrary to common misconceptions, the fossil record does not record one single lineage for any family of organisms but rather a series of branches, with many related species coexisting synchronously.  Darwin hypothesized that the evolutionary record reflected this bushiness and drew such a diagram in his journal.    At the time, though, he had little in the way of fossil evidence to back up this position.  Much has changed since his day.</p>  

<p align="center"><img src="http://biologos.org/uploads/static-content/kidder_Figure_1.jpg"></p>

<p>An analogy for understanding this “bushiness” was best described by Prothero and Buell (Prothero and Buell 2007).  They suggest that the reader consider his or her own genealogy.  You and your siblings are the direct descendents of your parents and, while you are similar to them, each of you has different characteristics not shared with them as well as characteristics that you do share.  Your parents have siblings as well (your aunts and uncles), and your grandparents are their last common ancestors. These siblings have their own children (your cousins), who have different and similar traits relative to their parents.  They are broadly recognizable as being related to you (“oh, I see you have Aunt Edna’s nose”) but three or four generations out, they will become less and less so.  These are the “nearest neighbours” that Ahlberg and Clack describe. In this analogy, each of these cousins represents a transitional form from what was (your grandparents) to what <em>will be</em> down the road.</p>

<p align="center"><img src="http://biologos.org/uploads/static-content/kidder_figure_3.jpg"></p>

<p>For example, no one would confuse a frog with a salamander but if you trace the fossil record of each back in time, eventually you encounter a fossil, <em>Gerobatrachus hottoni</em> which was recently discovered (Anderson et al. 2008) that is best described as a “frogamander,” having the basal characteristics of both frogs and salamanders. Had we seen such an animal at the time, it is likely we would not have found it remarkable because it would have resembled the species around it.  One lineage eventually diverged into frogs, salamanders and other amphibians.  Most (just like Darwin proposed in his tree diagram with the little hatch marks at the tip of many branches) went extinct.</p>

<p align="center"><img src="http://biologos.org/uploads/static-content/kidder_Figure_2.jpg"></p>

<h3>Taxonomy and the Beginnings of Human Origins</h3>

<p>All life is classified based on a system devised by Carolus Linneaus in 1735 in his remarkable work <em>Systema Naturae</em>.  This system gives all recognized species an individual place based on a system of hierarchy. The study of classification is known as taxonomy.  A taxonomic ranking for humans would be this:</p>

<p align="center"><img src="http://biologos.org/uploads/static-content/kidder_figure_5.jpg"></p>

<p>When a fossil is excavated, the first thing that the palaeontologist does is make a taxonomic assessment of where it fits in a sequence of known fossils.  Traits that are shared with other like species or genera are referred to as primitive traits.  Examples of this in humans are five fingers and the presence of three arm bones.  We share this with all mammals.  Traits that are new or are not shared with other like species are referred to as derived traits.  Examples of this in humans are the skeletal changes in the pelvis and the foot to allow for walking upright.  We do not share these with any other primates.</p>

<p>Transitional fossils in the human fossil record are distinguished at both the genus and species level.  This group includes the extinct genera <em>Ardipithecus</em> and <em>Australopithecus</em> and the current genus <em>Homo</em>.  All species except <em>Homo sapiens</em> are extinct.  Much of the recent study of early humans focuses on the transition from <em>Ardipithecus</em> (‘Ardi’) to <em>Australopithecus</em> (‘Lucy’ and similar fossils) and from <em>Australopithecus</em> to <em>Homo</em>, the genus that led eventually to us.  While each of the australopithecine species identified in the fossil record has derived characteristics that separate them from their ancestors and from each other, only one led to the genus <em>Homo</em>.</p>

<p align="center"><img src="http://biologos.org/uploads/static-content/kidder_Figure_4.jpg"></p>

<p>In future posts, I will describe the evidence for human evolution and why this evidence is compelling.  It suggests that we have had a long, varied history filled with great leaps of change, crushing defeat, and eventual expansion into all areas of the globe.</p>

<h3>Notes</h3>
<p>Ahlberg, P. & J. Clack (2006) A firm step from water to land. <em>Nature</em>, 440.</p>
<p>Anderson, J. S., R. R. Reisz, D. Scott, N. B. Frobisch & S. S. Sumida (2008) A stem batrachian from the Early Permian of Texas and the origin of frogs and salamanders. <em>Nature</em>, 453, 515-518.</p>
<p>Prothero, D. & C. Buell. 2007. <em>Evolution: What the fossils say and why it matters</em>. Columbia Univ Pr.</p>
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        <pubDate>Mon, 21 Jan 13 06:35:46 -0800</pubDate>
        <dc:creator>James Kidder</dc:creator>
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        <title>Series: Made in the Image of God: The Theological Implications of Human Genomics</title>
        <link>http://biologos.org/blog/series/made&#45;in&#45;the&#45;image&#45;of&#45;god&#45;the&#45;theological&#45;implications&#45;of&#45;human&#45;genomics?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/series/made&#45;in&#45;the&#45;image&#45;of&#45;god&#45;the&#45;theological&#45;implications&#45;of&#45;human&#45;genomics?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>This series by Denis Alexander reflects on advancements in genomics as well as their theological implications. He focuses on the relatedness of hominin genomes, arguing that this does not interfere with the image of God in humans. The image of God depends more on the capacity for relationship and covenant, not on a list of particular physical qualities. He then discusses why the recent studies of genomics provide “no grounds for genetic determinism.”</description>
        <content:encoded><![CDATA[<p class="intro">This post first appeared on <em><a href="http://www.huffingtonpost.com/dr-denis-alexander/human-genomics-and-human-_b_802978.html" target="_blank">The Huffington Post</a></em>.</p>

<p>The tenth anniversary of the human genome has been marked by some striking new genetic insights into human evolution and diversity. Do these new discoveries have any significance for the dialogue between science and religion in general, or for our sense of human uniqueness in particular?</p>

<p>The publication of the Neanderthal genome sequence in May 2010 set the pace. Not surprisingly -- given that our last common ancestor with the chimpanzee was around 5 to 6 million years ago, compared to a mere half a million years for our last common ancestor with the Neanderthal -- it turns out that we are genetically far closer to the Neanderthals than to the apes. In all, only seventy-eight changes in the genetic letters ('nucleotides') that would change the amino acid sequence of particular proteins were found in the Neanderthal DNA that were the same as the chimpanzee sequence but different in the human. Amongst other differences, 111 duplications of small DNA segments were found in the Neanderthal but not human sequence. Genetically we are closely related twigs on the great evolutionary bush of life.</p>

<p>But we knew that already. More surprising for many was the provocative finding that non-African humans are genetically closer to Neanderthals than African humans. In fact, the European and Asian genomes that were sequenced appear to contain one to four percent DNA of Neanderthal origin, and the gene flow that occurred appears to have been almost entirely from Neanderthal to human, rather than vice versa. How come? The most likely scenario is that there were a few instances of sexual reproduction between Neanderthals and human individuals belonging to the population that is thought to have emigrated out of Africa to populate the world sometime after seventy thousand years ago, explaining why the Neanderthal DNA sequences are not found in African genomes. The contribution of the Neanderthal genome has remained in European and Asian populations ever since.</p>

<p>To put this in perspective, most of our genes are very similar anyway to those found in Neanderthals and chimpanzees, and to other mammals like mice. We all share a "how-to-build-a-mammal" instruction manual, and the relatively minor genetic differences between us (minor relative to those we share in common) are the icing on the cake, as it were, that make us a human rather than a mouse, a chimp or a Neanderthal.</p>

<p>The year 2010 saw yet another twig appear on the hominin branch of the evolutionary bush, this time one even closer to the Neanderthals than our own. This story begins with the discovery by a Russian team of a sliver of finger bone from a remote Siberian cave in the Altai Mountains, known as the Denisova Cave. The team stored it away, thinking it was from one of the Neanderthals that frequented the cave between thirty thousand and forty-eight thousand years ago. But when DNA extracted from the bone was eventually sequenced, the results -- published just before Christmas -- revealed a population distinct from both humans and Neanderthals.</p>

<p>The finger appears to belong to a novel hominin population that shared a last common ancestor with Neanderthals more recently than humans, and overall is genetically closer to Neanderthals than to humans. It is too early to say whether the so-called 'Denisovans' represent a separate species and fossil data will be required to clarify that question. But what the results do suggest is that Melanesians -- the inhabitants of Papua New Guinea and islands northeast of Australia -- have inherited as much as one-twentieth of their DNA from the 'Denisovans', indicating that some limited inter-breeding took place between these ancient populations. Most fascinating of all is the idea that multiple hominin lineages were coexisting in Europe and Asia, along with modern humans, as recently as twenty-thousand to forty-thousand years ago.</p>

<p>Do these findings have any particular theological significance? It is difficult to know why this should be the case. In the Judeo-Christian tradition humankind uniquely is made "in the image of God". The suite of capabilities that emerged during human evolution is necessary but not sufficient to do justice to this much discussed theological insight. Our particular genetic instruction manual generates large frontal lobes, advanced cognitive abilities, rationality, language, consciousness and the ability to choose between right and wrong. It is this suite that gives us the ability to pray, worship and engage in communal religious practices.</p>

<p>But the idea of being made "in the image of God" is not encompassed simply within a static list of such human qualities. Theologians have drawn attention to the dynamic, relational aspects of the concept. It is humanity-in-relation-to-God, together with God-given responsibilities to humans in relationship with each other, that are thought to be more central to the idea. When did such spiritual capabilities and responsibilities first come into being? It is really difficult to know, but the answer certainly seems more rooted in God's intentions and purposes for humankind than in genetic change per se. Students can spend a long time being trained in the finer points of drama, but the play only gets off the ground when the actors are finally given their lines.</p>

<p>It seems quite likely that more twigs will continue to appear on the hominin branch of the bush of life as genomics continues to extend its reach. Such discoveries as such do not appear to raise any new theological questions. But other 2010 discoveries did highlight two genomic insights that do have relevance for religious views of human identity. The first insight comes from further Genome Wide Association studies that continue to subvert any lingering commitments to genetic determinism, for example the idea that there are genes "for" a particular human trait. The second insight comes from the finding that we are all more genetically different from each other than we realized even a few years ago. Genetics is underlining the uniqueness of each human individual. By the end of 2011 it is estimated that more than 30,000 human genomes will have been sequenced. Watch this space. Theological reflections on these findings will be the topic for Part 2.</p>]]></content:encoded>
        <pubDate>Tue, 15 Jan 13 06:00:13 -0800</pubDate>
        <dc:creator>Denis Alexander</dc:creator>
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        <title>Series: Behe, Lenski and the “Edge” of Evolution</title>
        <link>http://biologos.org/blog/series/behe&#45;lenski&#45;and&#45;the&#45;edge&#45;of&#45;evolution?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/series/behe&#45;lenski&#45;and&#45;the&#45;edge&#45;of&#45;evolution?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>In this series, we reexamine the claim made by Intelligent Design proponent Michael Behe to have found a limit to “Darwinian” evolution in light of recent results from the laboratory of Richard Lenski.</description>
        <content:encoded><![CDATA[<p>In previous posts in this <a href="http://biologos.org/blog/series/behe-lenski-and-the-edge-of-evolution">series</a>, we evaluated Behe’s claimed “edge” for what evolution can (and allegedly cannot) accomplish by examining the step-by-step path that bacteria in the Long Term Evolution Experiment (LTEE) took to arrive at a mechanism for utilizing citrate under aerobic conditions. In this post, we look at the implications of these results for another of Behe’s related ideas: that of irreducible complexity.</p>
 
<h3>Behe and IC</h3>

<p>Since we have previously explored Behe’s idea of irreducible complexity in an entire <a href="http://biologos.org/blog/series/understanding-evolution-the-evolutionary-origins-of-irreducible-complexity">series</a>, we will not revisit it here in great detail. It is important, however, to reemphasize how Behe defines irreducible complexity (IC). As we noted in the first part of that series, Behe frames his ideas on IC as a counter to Darwin’s ideas of gradualism.</p>

<p>For Behe, the argument for IC is a critique of gradual evolutionary processes, of the kind that Darwin saw as necessary for his theory to hold. When Behe introduces and defines IC in his book <em>Darwin’s Black Box</em>, he has a key quote from Darwin on gradualism explicitly in view:</p>

<blockquote>Darwin knew that his theory of gradual evolution by natural selection carried a heavy burden: "If it could be demonstrated that any complex organ existed which could not possibly have been formed by numerous, successive, slight modifications, my theory would absolutely break down."<br></br>

It is safe to say the most of the scientific skepticism about Darwinism in the past century has centered on this requirement… critics of Darwin have suspected that his criterion of failure had been met. But how can we be confident? What type of biological system could not be formed by “numerous, successive, slight modifications”? <br></br>

Well, for starters, a system that is irreducibly complex. By irreducibly complex I mean a single system composed of several well-matched, interacting parts that contribute to the basic function, wherein the removal of any one of the parts causes the system to effectively cease functioning. An irreducibly complex system cannot be produced directly (that is, by continuously improving the initial function, which continues to work by the same mechanism) by slight, successive modifications of a precursor system, because any precursor to an irreducibly complex system that is missing a part is by definition nonfunctional. An irreducibly complex biological system, if there is such a thing, would be a powerful challenge to Darwinian evolution.<br></br>(<em>Darwin’s Black Box</em>, p. 39) </blockquote>

<p>The definition of an IC system is thus straightforward: it is a matched group of components, where all the components are necessary for the function of the system. The necessity of each component can be demonstrated by attempting to remove it – if the system no longer works if even one component is removed, it is by definition IC.</p>


<h3>Behe and exaptation</h3> 
 
<p>The standard response to Behe’s argument from IC is to discuss the evolutionary concept of exaptation: that new systems and functions are cobbled together from components that have functional roles in other systems already present in the cell. Behe discusses, and ultimately dismisses this idea in <em>Darwin’s Black Box</em> as follows: </p>

<blockquote>In Chapter 2 I noted that one couldn’t take specialized parts of other complex systems (such as the spring from a grandfather clock) and use them directly as specialized parts of a second irreducible system (like a mousetrap) unless the parts were first extensively modified. Analogous parts playing roles in other systems cannot relieve the irreducible complexity of a new system; the focus simply shifts from “making” the components to “modifying” them. In either case, there is no new function unless an intelligent agent guides the setup.
</blockquote>

<p>So for Behe, two points are clear: parts selected for function in one system cannot be exapted for use in other systems since they would require too many modifications; and the emergence of a new function is the indication that an intelligent agent is guiding the process. </p>

<p>Behe has <a href="http://www.evolutionnews.org/2012/11/rose-colored_gl066361.html">responded</a> to my previous posts to claim that the tandem duplication event that brought about the Cit+ actualization event should not be considered a gain-of-FCT mutation under his criteria:</p> 

<blockquote>The gene duplication which brought an oxygen-tolerant promoter near to the citT gene did not make any new functional element. Rather, it simply duplicated existing features. The two FCTs comprising the oxygen tolerant citrate transporter locus -- the promoter and the gene -- were functional before the duplication and functional after. I had written in my review that one type of mutation that could be categorized as a gain-of-FCT was gene duplication with subsequent sequence modification, to allow the gene to specialize in some task. Venema thinks the mutation observed by Lenski is such an event. He has overlooked the fact that there was no subsequent sequence modification; a segment of DNA simply tandemly duplicated, bringing together two pre-existing FCTs.</blockquote>

<p>As an aside, quibbling over whether this mutation constitutes a “genuine gain-of-FCT” mutation is not my purpose here, since the definition is Behe’s to define, and I am not aware of anyone else in the scientific literature who uses Behe’s definitions.  That said, I consider it passing strange to claim that a series of events that produced a gene that has a new sequence and functional properties distinct from either of its component parts does not constitute the production of a new “functional coded element.” If nothing else, it is a functional coded element that has not previously existed, cobbled together from parts of other functional coded elements, displaying new, adaptive properties. If according to Behe’s definition that’s not “new” or a “gain” then I guess it’s not, but that seems to me to torture the words “new” and “gain” beyond recognition. But I digress.</p>

<p>The important point for our purposes, however, lies elsewhere. Note carefully how Behe describes the Cit+ actualization event. By dividing the new aerobic citrate transporter gene into two previously existing FCTs, Behe is describing an exaptation event. The one FCT (the aerobic promoter) starts off as a necessary component of a gene transcribed when oxygen is present. As such it is under selection for that function, which has nothing to do with expressing a citrate transporter. The second FCT (the citrate transporter amino acid coding sequence) is under selection to be a citrate transporter, which has nothing to do with the function of the gene the promoter comes from. The Cit+ actualization event, then, exapts these two FCTs by placing them together to create a new function (which Behe does not mention). </p>

<p>And here’s the kicker: the new system (expression of the citrate transporter when oxygen is present) requires both FCTs in order to work. It has become a system of “well matched, interacting parts that contribute to the basic function” (i.e. transporting citrate in the presence of oxygen) “wherein the removal of any one of the parts causes the system to effectively cease functioning.” </p>

<p>In other words, it is a new IC system – a small and relatively simple system, yes, but nonetheless IC. Now, I’m fairly sure that Behe would not define this system as IC, since the documentation of an IC system evolving would seriously undermine his thesis. I am interested, however, in how he will handle this development, on two fronts. First, he would need to explain specifically why two exapted FCTs that are required together for a basic function does not constitute an IC system (if indeed he wishes to preserve his definition). Secondly, given that he allows for exaptation in this case, he needs to explain how exaptation is not a threat to IC in general. In <em>Darwin’s Black Box</em> he disallows exaptation altogether, but that option is no longer on the table. </p>

<p>In the next post in this series, we’ll continue to explore the evidence for exaptation  as a means to build new FCTs, and go on to examine the implications of this evidence for Douglas Axe’s proposed limit to evolutionary mechanisms.</p> 

<h3>For further reading:</h3>
 
<p>Blount, Z.D., Barrick, J.E., Davidson, C.J. and Lenski, R.E. (2012). Genomic analysis of a key innovation in an experimental Escherichia coli population. <em>Nature</em> 489; 513- 518.</p> 
<p>Michael J. Behe, <em>Darwin’s Black Box: The Search for the Limits of Darwinism</em> (New York: Free Press, 2006).</p>
<p>Michael J. Behe, <em>The Edge of Evolution: The Search for the Limits of Darwinism</em> (New York: Free Press, 2007).</p>
<p>Michael J. Behe (2010). Experimental evolution, loss-of-function mutations, and “The first rule of adaptive evolution”. <em>The Quarterly Review of Biology</em> 85(4); 419-445. </p>]]></content:encoded>
        <pubDate>Thu, 29 Nov 12 08:04:11 -0800</pubDate>
        <dc:creator>Dennis Venema</dc:creator>
        <!--<dc:date>Nov 29, 2012 08:04</dc:date>-->
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        <title>Series: Decoding ENCODE</title>
        <link>http://biologos.org/blog/series/decoding&#45;encode&#45;series?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/series/decoding&#45;encode&#45;series?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>The BioLogos Foundation explains to the findings of the Encyclopedia of DNA Elements (ENCODE) project and responds to the claims that its discoveries challenge the theory of evolution, especially regarding so&#45;called &quot;junk DNA&quot;.</description>
        <content:encoded><![CDATA[<p>In 2003, under the leadership of BioLogos founder Francis Collins, the Human Genome Project sequenced the full human genome, showing us for the first time the order of the 3.2 billion chemical “bases” that make up the rungs of DNA’s double helix structure. The project identified and mapped 23,000 genes that code for proteins, but those genes make up less than 2% of the total sequence—far fewer than originally predicted, given the complexity of humans. While many non-coding sequences were identified as having function as well, there were still vast swaths of the genome that had no obvious function. In fact, what was known about certain classes of sequences suggested that they had no functional role for humans—such as the sequences identified as either transposons or transposon fragments that make up nearly half of our genome. These sorts of sequences seemed to fit into what was popularly known as the “junk DNA” category. </p>

<p>With the complete genome sequence in hand, we knew the sequence and location of our genes, but what we didn’t know was how all those genes are regulated: how do the trillions of cells in our bodies know when to turn on or off all those genes?  How do the hundreds of distinct cell types develop and function together, when they are all running on the same DNA “operating system?”  </p>
<p>That’s where the ENCODE (short for Encyclopedia of DNA Elements) project comes in. Launched in September 2003, shortly after the announced completion of the Human Genome Project, the goal of the ENCODE project is “to build a comprehensive parts list of functional elements in the human genome, including elements that act at the protein and RNA levels, and regulatory elements that control cells and circumstances in which a gene is active.” In other words, the project seeks to understand how the genome “works.”</p>

<p>Early this month, researchers from ENCODE released more than thirty papers presenting their findings. During a <em>Science</em> magazine <a href="http://news.sciencemag.org/sciencenow/2012/09/live-chat-figuring-out-what-dna.html">online chat</a>, the project’s data coordinator, Ewan Birney, explained the outcome:</p>

<blockquote>The ENCODE project aimed to start our understanding of how the human genome works. We know that (nearly) all the information that determines a human is in the genome, as we all start off as single cell with this DNA. However, we had a patchy understanding of how it works, in particular away from protein coding genes.<br /><br />

To work out how the genome works, we used the fact there are many tiny machines (proteins and RNA - RNA is very like DNA) in each of our cells which know how to "read" parts of the genome. By monitoring where these little molecular machines are on the genome, or how parts of the DNA are copied into RNA (there are quite a few different types of RNA as well), we start to gain some insight into the genome.<br /><br />

We did many such experiments, across different cell types (eg, one cell type was very similar to a liver cell type; another was very similar to a white blood cell). This way not only can we see what is similar, we can also see differences between these cell types.<br /><br />

There is a lot more to get to know and understand here - this is definitely closer to the start than the end. But it is a substantial amount of data, and analysis, to start on this journey.</blockquote>

<p>According to the abstract of one of the <a href="http://www.nature.com/nature/journal/v489/n7414/full/nature11247.html">lead papers</a> from <em>Nature</em>, this extraordinary glut of data “enabled us to assign biochemical functions for 80% of the genome, in particular outside of the well-studied protein-coding regions.”  Only 2% of the genome codes for proteins, but 80% or more has <em>some</em> biochemical function.  As a <em>Science</em> <a href="http://www.sciencemag.org/content/337/6099/1159">news article</a> put it, these 30 papers “sound the death knell for the idea that our DNA is mostly littered with useless bases.”</p>

<p>The pro-Intelligent Design organization The Discovery Institute has heralded the discovery as the “demise of junk DNA.”  Casey Luskin writes for their <a href="http://www.evolutionnews.org/2012/09/junk_no_more_en_1064001.html">blog</a> <em>Evolution News</em>:</p>

<blockquote>Let's simply observe that it provides a stunning vindication of the prediction of intelligent design that the genome will turn out to have mass functionality for so-called "junk" DNA. ENCODE researchers use words like "surprising" or "unprecedented." They talk about of how "human DNA is a lot more active than we expected." But under an intelligent design paradigm, none of this is surprising. In fact, it is exactly what ID predicted.</blockquote>

<p>The extent to which the ENCODE project been able to identify function has been surprising—even exhilarating—though scientists have for some time been getting glimpses of the many ways in which segments of DNA can be “active.”  Even in 1970 biologists knew that some non-coding DNA had function, and by 2003 there was a large body of work demonstrating that many non-coding elements acted as promoters, enhancers, insulators, and so on. Indeed, in recent years many have come to appreciate the fact that “junk” was never really an appropriate metaphor in the first place.   Still, because sequencing of multiple genomes has shed such extraordinary light on key evolutionary mechanisms, many geneticists have focused on function primarily in terms of which regions do or do not contribute to the evolutionary fitness of their host, rather than whether they were merely "doing something" biochemically.  What the impressive ENCODE project has done is open a treasure trove of new information that can only accelerate the pace at which researchers are able to explore the incredible subtlety and complexity of DNA, and refine the very concept of “functionality.” </p>

<p>So with all this in mind, is ENCODE a stunning victory for ID, as Luskin believes? Bryan College biologist Todd Wood thinks not.  He <a href="http://toddcwood.blogspot.co.uk/2012/09/everyones-excited-about-encode.html">writes</a>, “I don't think that function equates to design, nor do I think that design requires or predicts function.  They're not the same thing… my understanding of function does not require me to hypothesize God (or an anonymous designer, if you must) as the proximal cause.”  </p>

<p>We agree.  Indeed we would go on to say that evolution and design are not mutually exclusive.  So while finding function is not sufficient to prove design, recognizing that function has arisen by way of evolution does not indicate that God was not at work.  We at BioLogos believe God providentially works out his purposes—his designs—<em>through</em> the elegant processes of evolution, not in opposition to them.</p>

<p>Amazing as the new data are, it only strengthens and enhances our evidence for evolution.  While much of the genome is “doing something” biochemically, it is still likely that the majority of the sequence is evolutionarily neutral (Senior Fellow Dennis Venema discusses the evidence for this “neutrality” in a <a href="http://biologos.org/blog/understanding-evolution-is-there-junk-in-your-genome-part-1">post</a> on our site, including a striking comparison between 29 different mammal genomes and the human genome).  In fact, another  ENCODE researcher participating in the <em>Science</em> magazine chat, John A. Stamatoyannopoulos of the University of Washington School of Medicine, thinks the findings align beautifully with evolutionary theory:
</p>

<blockquote>ENCODE's data provide a unique and powerful window through which to view evolutionary change. We can see those changes directly by lining up the genome sequences of many different organisms -- these line-ups have revealed millions of regions where all the genomes agree, indicating sequences that have been specially preserved by evolution while others have decayed away (ie freely changed their letter codes). We now see that a large proportion of these 'conserved' regions are lighted up by ENCODE annotations, indicating that they are marking spots in the genome that contain important instructions for cell function.</blockquote>

<p>We’ve discussed “junk” DNA previously, including a multi-part series by Dennis Venema, and we’ve received many emails over the past few days asking for our comments on the ENCODE findings. On Monday and Tuesday, Dr. Venema will begin to offer his own thoughts on ENCODE.</p>

<p class="intro">A special thanks goes to Darrel Falk, Mark Sprinkle, Kathryn Applegate, Dennis Venema, and Tom Burnett for their contributions to this post.</p>]]></content:encoded>
        <pubDate>Wed, 26 Sep 12 05:00:35 -0700</pubDate>
        <dc:creator>Stephen Mapes, Dennis Venema</dc:creator>
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        <title>Denisovans, Humans and the Chromosome 2 Fusion</title>
        <link>http://biologos.org/blog/denisovans&#45;humans&#45;and&#45;the&#45;chromosome&#45;2&#45;fusion?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/denisovans&#45;humans&#45;and&#45;the&#45;chromosome&#45;2&#45;fusion?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>The Denisovans, an extinct hominid group that interbred with modern humans, made the news again lately with the publication of a more detailed study of their genome. One of the many interesting findings was that the Denisovans share the same chromosome 2 fusion that modern humans have.</description>
        <content:encoded><![CDATA[<br> </br><p>The Denisovans, an extinct hominid group that interbred with modern humans, made the news again lately with the publication of a more detailed study of their genome. One of the many interesting findings was that the Denisovans share the same chromosome 2 fusion that modern humans have. In this post, I review what we know about the origins of human chromosome 2, and then discuss the new Denisovan findings and their implications. </p>

<h3>The origins of human chromosome 2: a brief review</h3>
<p>Though I have discussed the evidence for a fusion event leading to human chromosome 2 before, perhaps a brief review of the evidence is in order. The human genome is made up of 23 pairs of chromosomes (for a total of 46 chromosomes). This makes us something of an oddity among living great apes, all the rest of whom  have 24 pairs of chromosomes (for a total of 48). Given that there are many independent lines of evidence that support the conclusion that we share a common ancestor with other great apes, this poses something of a conundrum: how is it that our species arrived at this specific chromosome number? If we were to represent this “problem” on a phylogeny, or tree of relatedness, it would look something like this (not to scale):</p>

<p class="caption-center"><img src="http://biologos.org/uploads/static-content/denisovans_fig_1.jpg" alt="" height="357" width="434"  /></p>
 
<p>Our closest living relatives, chimpanzees and bonobos, both have 48 chromosomes, as do all other great apes such as gorillas and orangutans. This pattern has one of two explanations, one of which is much more likely than the other. Either the common ancestor to these species had 48 chromosomes, and there was an event that reduced that number to 46 specifically on the lineage leading to humans (option A), or the common ancestor species had 46 chromosomes, and there were independent, repeated events that increased chromosome number in all other great ape species (option B). We can compare these options by placing the required event(s) on the phylogeny (again, not to scale): </p>

<p class="caption-center"><img src="http://biologos.org/uploads/static-content/denisovans_fig_2.jpg" alt="" height="300" width="570"  /></p>
 
<p>It should be obvious that the option that requires the fewest events is the more likely one – in this case option A with an event that reduces chromosome number in the lineage leading to humans. The other option, that of repeated, independent events to increase chromosome number, remains a formal, but unlikely, possibility. Events that reduce chromosome number are not frequent occurrences, so Option A is more likely than Option B.</p>

<p>We can also find further support for Option A, because it predicts a specific type of event, namely one that reduces chromosome number. Since <em>loss</em> of a large amount of chromosomal material is almost always detrimental, we need an event that reduces chromosome number without losing information. One way for this to happen is for two chromosomes to fuse together and become one. Initially, this event would produce an individual with 47 chromosomes, where two different chromosomes get stuck together. Contrary to what is often assumed, this individual would be fertile and able to interbreed with the others in his or her population (who continue to have 48 chromosomes). In a small population, over time, two relatives who both have one copy of the fusion chromosome may mate and produce some progeny with two copies of the fused chromosome, or the first individuals with 46 chromosomes. Since either a 48-pair set or a 46-pair set is preferable for ease of cell division, this population will either eventually get rid of the fusion variant (the most likely outcome), or by chance will switch over completely to the “new” form, with everyone bearing 46 chromosome pairs. While not overly likely, this type of event is not especially rare in mammals, and we have observed this sort of thing happening within recorded human history in other species.  Some mammalian species even maintain distinct populations in the wild with differing chromosome numbers due to fusions, and these populations retain the ability to interbreed. </p>

<p>Further evidence for a fusion event in the lineage leading to modern humans comes from comparing <em>synteny</em>, or gene locations and orders on chromosomes within modern great apes – an issue we have discussed <a href="http://biologos.org/blog/signature-in-the-synteny">here</a> before.  In brief, what we see in human chromosome 2 is exactly what we would predict for a fusion event. When compared to other great apes, we see the genes on human chromosome 2 match up, in order, with two smaller ape chromosomes. We also see that sequences used at the tips of chromosomes are present at the proposed fusion site, and that human chromosome 2 has not one but two sites for the cell cytoskeleton to attach to for cell division – but that one of the sites is mutated and not functional, though it lines up precisely with the location of this site on the appropriate ape chromosome. Together, this evidence consistently supports both common ancestry for humans and great apes, and specifically that the difference we see in our chromosome numbers arose due to a single fusion event. I briefly discussed this evidence in my <a href="http://biologos.org/blog/the-sorrows-and-joys-of-teaching-evolution">last post</a> where I describe how I teach some of this material and the compelling impact it has on students exploring the evolution question for the first time. </p>

<h3>Enter the Denisovans</h3>
<p>With that as background, we are now prepared to appreciate a new finding that comes from genomics work done on the Denisovan hominids, an archaic species that is more closely related to Neanderthals than to us, but that nonetheless interbred with some anatomically modern humans as they migrated out of Africa and populated the globe. (For those not familiar with the Denisovans, or the evidence for our interbreeding with them, both Darrel Falk and I have written on this previously, <a href="http://biologos.org/blog/a-geneticists-journey">here</a> and <a href="http://biologos.org/blog/understanding-evolution-neanderthals-denisovans-and-human-speciation">here</a>). Recently, a more detailed understanding of the Denisovan genome <a href="http://www.nature.com/news/new-dna-analysis-shows-ancient-humans-interbred-with-denisovans-1.11331">was published</a>, and nested in the new information is the discovery that the Denisovans share the 46 chromosome set with the same fusion that <a href="http://johnhawks.net/weblog/reviews/denisova/denisova-chromosome-2-2012.html">we have</a>. This strongly supports the hypothesis that the fusion event predates the separation of our species. If we were to represent this on a phylogeny, we can now place this event with more accuracy than before (as before, the phylogeny is not to scale): </p>

<p class="caption-center"><img src="http://biologos.org/uploads/static-content/denisovans_fig_3.jpg" alt="" height="452" width="513"  /></p>
 
<p>Despite this new information, one obvious question remains. Did the Neanderthals also have the 46-pair set? From looking at the phylogeny above, we can see that the most likely answer is that they did, since the fact that the Denisovans had it strongly implies that the last common ancestor of humans and Neanderthals / Denisovans had it as well, and the Neanderthal-Denisovan split comes later. While the Denisovan DNA samples are of high enough quality to make this assessment, we do not yet have Neanderthal DNA of high enough quality to do the same analysis with current methods (though one additional feature of the new work on the Denisovan genome is developing more sensitive DNA sequencing techniques that may resolve this question in the future).</p>

<p>In other words, this fusion seems to be an ancient one, predating our species by several hundred thousand years. Present estimates of the last common ancestor between humans and Neanderthals / Denisovans  range at about 800,000 years ago.</p>

<h3>Implications for understanding our “becoming human”</h3>
<p>The main implication from this work is that it places the fusion event well before the advent of our species. I’ve often chatted informally with Christians about evolution, and at times some have thought that this fusion event was what “started” our species, or made our species unable to interbreed with other groups. Some have even suggested that perhaps the fusion event was what produced the first human (i.e. Adam). </p>

<p>Note that thinking this way suggests a misunderstanding of how chromosome fusions occur and what effect they have on their hosts. A fusion does not precipitate a speciation event, but rather the individual with the fusion remains a part of his or her population, and able to interbreed, even if with reduced fertility. Also, there is no necessary biological effect or change that the fusion produces on the appearance of the organism.  These misunderstandings aside, however,what this new evidence shows is that this fusion event took place long before modern humans arose at around 200,000 years ago. Indeed, the 800,000 years ago date for the last human - Denisovan common ancestor means that this is the most recent date possible for the fusion. While it is an interesting piece of our evolutionary history, it doesn’t seem to have much to do with how we came to acquire the traits that set us apart from, and ultimately outcompete, other similar species.</p> 
<br> </br>]]></content:encoded>
        <pubDate>Thu, 06 Sep 12 13:07:21 -0700</pubDate>
        <dc:creator>Dennis Venema</dc:creator>
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        <title>Being Human (Infographic)</title>
        <link>http://biologos.org/blog/being&#45;human&#45;infographic?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/being&#45;human&#45;infographic?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>The BioLogos Forum is pleased to present this infographic about the current anthropological understanding of human evolution, which takes into account research into both physiological and cultural developments among our ancient ancestors.</description>
        <content:encoded><![CDATA[<a href="http://biologos.org/uploads/static-content/Human-Evolution-Infograpic_full.png"><img src="http://biologos.org/uploads/static-content/Human-Evolution-Infograpic_570.png" alt="" height="1008" width="570"  /></a>
<p><strong>(Click Image for Full Resolution)</strong></p>]]></content:encoded>
        <pubDate>Mon, 30 Jul 12 10:06:50 -0700</pubDate>
        <dc:creator></dc:creator>
        <!--<dc:date>Jul 30, 2012 10:06</dc:date>-->
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            <item>
        <title>Becoming Human: New Insights from Genome&#45;wide Functional Genomics</title>
        <link>http://biologos.org/blog/becoming&#45;human&#45;new&#45;insights&#45;from&#45;genome&#45;wide&#45;functional&#45;genomics?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/becoming&#45;human&#45;new&#45;insights&#45;from&#45;genome&#45;wide&#45;functional&#45;genomics?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>We live in exciting times for a geneticist: more and more genomes are being sequenced, and more and more novel genome&#45;wide analyses are being performed to shed light on what all those newly&#45;determined sequences mean.</description>
        <content:encoded><![CDATA[<p>We live in exciting times for a geneticist: more and more genomes are being sequenced, and more and more novel genome-wide analyses are being performed to shed light on what all those newly-determined sequences mean. These genomic studies powerfully support the <a href="http://www.asa3online.org/PSCF/2010/08/20/genesis-and-the-genome-genomics-evidence-for-human-ape-common-ancestry-and-ancestral-hominid-population-sizes/" target="_blank">common ancestry</a> of humans with other forms of life, such as chimpanzees and other great apes. These studies have also measured ancient human population size dynamics with increasingly precise methods, indicating that (biologically at least) we <a href="http://biologos.org/blog/does-genetics-point-to-a-single-primal-couple">do not descend solely from a single ancestral couple</a>. These topics are ones that I have commented on frequently here, since—especially in our scientifically-informed age—the church must come to terms with these important issues. </p>

<p>Recently, an elegant and powerful experiment was done to further investigate a question of interest to many evangelicals: how is it that we are so <em>different</em> from our closest biological relative (the chimpanzee) when our DNA is so very <em>similar</em>? Even when using estimates that maximize the differences, our genomes are 95% identical. The conclusion, that I have <a href="http://biologos.org/blog/evolution-and-the-origin-of-biological-information-part-6">discussed here in the past</a> is that a dispersed set of numerous small changes can have large effects on the form and function of an organism. Of course, small changes are what evolution specializes in: tinkering here and there, one mutation at a time, as we have <a href="http://biologos.org/blog/understanding-evolution-the-evolutionary-origins-of-ic-part-4">directly observed in laboratory experiments</a>. Before we discuss how this pivotal new study was done, however, a brief review of how genes work is in order. </p>

<h3>Review: gene structure and function</h3>
<p>If you’ve been following the ongoing <em>Understanding Evolution</em> series here at BioLogos, you will recall that we discussed <a href="http://biologos.org/blog/understanding-evolution-is-there-junk-in-your-genome-part-2">gene structure</a> and function not long ago, in the context of discussing non-functional DNA sequences (so-called “junk DNA”): </p>

<blockquote><p>Genes have a typical structure (obviously simplified here somewhat). First off, there is the actual DNA sequence that specifies the protein product sequence (the so-called “coding sequence”, shown in blue). This sequence is usually broken up into segments in mammalian genes, and these sequences are spliced together when the DNA sequence of the gene is transcribed into a “working copy” called mRNA – a short duplicate of the code that can be used by the cell’s machinery to actually build the specified protein. </p>

<p class="caption-center"><img src="http://biologos.org/uploads/static-content/becoming_human_fig_1.jpg" alt="" height="326" width="576"  /></p>
 
<p>In addition to the actual coding sequences, other sequences are needed to tell the cell when and where certain genes should be transcribed into mRNA. Every cell in an organism has the same genes in their chromosomes, but not all are transcribed. Using different genes in different combinations is what makes cells take on distinct roles – for example, cells in your small intestine need different genes (for absorption of nutrients) than do cells of the immune system (for fighting off pathogens). Regulatory sequences make sure any given cell type has the right genes transcribed and made into protein products.  Some of these sequences are part of the mRNA transcript (shown in red), and others are not transcribed but only part of the chromosomal DNA sequence (such as the “promoter” region that directs the enzymes responsible for making the mRNA transcript (shown in blue).</p> </blockquote>

<p>With this background in mind, we can now extend our understanding slightly further. DNA in cells is “packaged up” when not in use by winding it around a class of proteins called histones. This packaging keeps the DNA in a compact form, and it is useful in helping cells prevent genes they don’t need from being transcribed. For any given chromosome - which is one long strand of DNA – some regions will be packed away (and the genes there not transcribed), while other regions are unpacked (less tightly associated with histones) with the genes there actively undergoing transcription. The open regions allow for transcription because enzymes and other proteins needed for the process can gain access to the DNA there. </p>

<h3>Comparing gene transcription across species at the genomic level</h3>
<p>Because of the overwhelming similarity between the human and chimpanzee genomes (and the even greater similarity when examining only their protein-coding regions) it has long been hypothesized that changes in “where and when” genes are transcribed will be a major player in what makes our two species different (in contrast to the idea that we are different because of the relatively tiny changes in the coding regions of our genes). From an evolutionary point of view, there are a few ways to explore how differences in gene transcription arise once species go their separate ways, such as when our ancestors parted ways with our last common ancestor with chimps around 4-6 million years ago. The main idea is to compare the same cell type in both species: human skin cells versus chimp skin cells, for example. Determining what specific genes are transcribed (or not) in human cells and comparing the results to chimpanzee cells gives us an idea of how gene transcription differences arose in the two lineages since they last shared a common ancestor. The challenge, up until now, is that there was no easy way to indentify the changes in regulatory DNA that led to those differences in transcription. The problem arises because of the overwhelming similarities between our genomes: changes in transcription due to changes in DNA sequence are hard to find simply by looking for sequence differences, since in most cases the differences will be very small. There are also many small differences between our genomes that have no effect on gene transcription, so we cannot simply look for any difference at all. What we need is a way to identify <em>which</em> small changes led to differences in gene transcription. </p>

<h3>Old hypotheses, new technology</h3>
<p>Back in 2008, a method for addressing this issue was devised. As we have seen, DNA undergoing transcription is “unpacked” and accessible to enzymes. Researchers have long known about a certain enzyme, called DNAse I, that can cut exposed DNA but leave histone-packaged DNA alone. This means that DNA from any given cell type can be cut using this enzyme specifically at “DNAse I hypersensitive sites” (DHS’s) where regulatory DNA is unpackaged and a nearby gene is being transcribed. While this technique is decades old, what is new is a way to then go on to sequence the DNA next to each of these sites. This requires what is known as “next-generation” or “deep” DNA sequencing methods that can use a linker sequence to attach to the DNAse I cut sites and then amplify and sequence individual DNA fragments attached to the linker. Since we have the entire genome sequence of humans and chimps it is then trivial to take the sequencing results and map them to either genome. The results are a detailed map of what chromosome regions are unpacked and regulating transcription in each cell type. These maps can then be compared with related species across entire genomes. </p>

<p>It was only a matter of time before these powerful methods were applied to the human-chimp question, and the <a href="http://www.plosgenetics.org/article/info%3Adoi%2F10.1371%2Fjournal.pgen.1002789">first results became available last month</a>.  The research group was of course interested in differences between the two species, and the results are fascinating. The researchers looked at several different cell types, and found similar results in all cases. The results for any given gene fall into one of several categories when compared to the human-chimp (H-C) last common ancestor:</p>

<ul><li>No differences in regulatory DNA relative to the H-C last common ancestor (1259 genes)</li>
<li>Gain of regulatory DNA in humans relative to the H-C last common ancestor (836 genes)</li>
<li>Loss of regulatory DNA in humans relative to the H-C last common ancestor (286 genes)</li>
<li>Gain of regulatory DNA in chimpanzees relative to the H-C last common ancestor (676 genes)</li>
<li>Loss of regulatory DNA in chimpanzees relative to the last common ancestor (211 genes)</li></ul>

<p>While it was not surprising to find a significant percentage of unchanged genes, it was interesting to note the large percentage of <em>differences</em> in regulatory DNA, despite the overwhelming genomic similarity between the two species. Small changes had a large impact on gene regulation. The researchers went on to examine the new regulatory regions they had identified, and found that they showed evidence of being under natural selection. These mutations had not only brought change, but provided an advantage to their hosts. </p>

<p>These results underscore a few important points: </p>
<ul><li>Species become different because differences accumulate in both lineages once a common ancestral population splits into two. The differences we see in modern species are due to changes both species have accumulated over time.</li>
<li>Tweaking the regulation of numerous genes appears to be a widespread mechanism for generating evolutionary novelty. Both gaining and losing regulatory sequences is common. </li>
<li>These gains or losses in regulatory DNA require only very small changes at the DNA sequence level, but they can have profound impacts on how genes are transcribed. </li>
<li>These changes appear to be widespread in genomes, and able to accrue in short evolutionary timescales. </li>
<li>Small changes are exactly the sort of thing that evolution is known to be able to accomplish easily, one mutation at a time. </li>
<li>These small changes bear the marks of natural selection, indicating that they were selected for as they arose. </li>
<li>Anyone who wishes to call these differences “insignificant” will have to contend with the observation that the biological differences we observe between humans and chimpanzees are significant. </li>
<li>Small, incremental changes at the genomic level fit nicely with the fossil evidence for human evolution, which, though fragmentary, indicates gradual changes in skeletal morphology over the same timescale. </li></ul>

<p>Of course, this study is just the beginning, and future studies are sure to examine and compare additional cell types found in humans and our evolutionary cousins. These results have already added to the troubles of antievolutionary groups that wish to portray the differences between us as too great for evolutionary mechanisms to bridge. I suspect these troubles will only worsen in the coming years as these new techniques come into their own. </p>

<h3>For further reading: </h3>
<p>Shibata Y, Sheffield NC, Fedrigo O, Babbitt CC, Wortham M, et al. (2012). Extensive Evolutionary Changes in Regulatory Element Activity during Human
Origins Are Associated with Altered Gene Expression and Positive Selection. <em>PLoS Genetics</em> 8(6): e1002789. doi:10.1371/journal.pgen.1002789</p>

<p>http://www.plosgenetics.org/article/info%3Adoi%2F10.1371%2Fjournal.pgen.1002789</p>
]]></content:encoded>
        <pubDate>Fri, 27 Jul 12 05:00:11 -0700</pubDate>
        <dc:creator>Dennis Venema</dc:creator>
        <!--<dc:date>Jul 27, 2012 05:00</dc:date>-->
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        <title>Hominids Lived Millions of Years Ago, but How Can We Tell? (Videocast)</title>
        <link>http://biologos.org/blog/hominids&#45;videocast?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/hominids&#45;videocast?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>This BioLogos videocast addresses the age of recently discovered hominid fossils and how scientists are able to obtain those dates.</description>
        <content:encoded><![CDATA[<p>Today we present the fifth entry in our on-going BioLogos videocast series. The latest episode addresses the age of recently discovered hominid fossils and how scientists are able to obtain those dates. The script was written by biology student Joy Walters, with help from BioLogos president Darrel Falk.</p>

<p>For more, be sure to read our FAQs <a href="http://biologos.org/questions/ages-of-the-earth-and-universe">How are the ages of the Earth and universe calculated?</a> and <a href="http://biologos.org/questions/what-scientific-evidence-do-we-have-about-the-first-humans">What scientific evidence do we have about the first humans?</a>, as well as our recent infographic <a href="http://biologos.org/blog/how-do-we-know-the-earth-is-old-infographic">How Do We Know the Earth is Old?</a>.</p>

<h3>Author's Note from Joy Walters</h3>
<p>As I mentioned in my first post, I grew up skeptical of the whole idea of evolution. One contributor to my disbelief was the lengthy timescale for the “tree of life” that was presented with the theory. I would hear, for example, that dinosaurs lived hundreds of millions of years ago, but there was no explanation of why this was true; it was just given as a fact. No one explained the methods of dating, and so I thought biologists simply estimated the ages of species to fit their preconceived notions of how long it would take for one species to emerge from another. It also seemed like the ages were periodically revised and extended farther back in time, and I figured scientists needed to manipulate numbers to make evolution plausible. This, in my mind, made the theory both unbelievable and dismissible.</p>

<p>Once I learned about the techniques used to date fossils, I realized that my first impressions were wrong; the ancient ages of species are scientific determinations rather than scholarly conjectures. However, I have found in recent conversations that Christians remain skeptical of old ages and the evolutionary time scale. For this reason, I wanted the videocast to address the process of fossil dating (what the methods are and why they are accurate) while focusing on cases where hominid fossils were discovered and dated using these very methods. My hope is that Believers would be informed about the evidence for human evolution and its scientific grounding.</p>]]></content:encoded>
        <pubDate>Thu, 26 Jul 12 05:00:03 -0700</pubDate>
        <dc:creator>Joy Walters</dc:creator>
        <!--<dc:date>Jul 26, 2012 05:00</dc:date>-->
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            <item>
        <title>What scientific evidence do we have about the first humans?</title>
        <link>http://biologos.org/questions/what&#45;scientific&#45;evidence&#45;do&#45;we&#45;have&#45;about&#45;the&#45;first&#45;humans?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/questions/what&#45;scientific&#45;evidence&#45;do&#45;we&#45;have&#45;about&#45;the&#45;first&#45;humans?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>In recent decades, scientists have discovered more about the beginnings of humanity.  The fossil record shows a gradual transition over 5 million years ago from chimpanzee&#45;size creatures to hominids with larger brains who walked on two legs.   Later hominids used fire and stone tools and had brains as large as modern humans.  Fossils of homo sapiens in east Africa date back nearly 200,000 years.  Humans developed hearths for fire, stone points for spears and arrows, and cave paintings by 30,000 years ago.   By 10,000 years ago, humans had spread throughout the globe.   Genetic studies support the same picture.  Humans share more DNA with chimpanzees than with any other animal, suggesting that humans and chimps share a relatively recent common ancestor.  Also, the same defective genes appear in both humans and chimps, at the same locations in the genome—an observation difficult to explain except by common ancestry. Genetics also tells us that the human population today descended from more than two people. Evolution happens not to individuals but to populations, and the amount of genetic diversity in the gene pool today suggests that the human population was never smaller than several thousand individuals.  Yet all humans, of all races, are descended from this group.  Humanity is one family.</description>
        <content:encoded><![CDATA[<em>Coming Soon</em>]]></content:encoded>
        <pubDate>Thu, 12 Jul 12 14:34:24 -0700</pubDate>
        <dc:creator></dc:creator>
        <!--<dc:date>Jul 12, 2012 14:34</dc:date>-->
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        <title>Series: Understanding Evolution: the Evolutionary Origins of Irreducible Complexity</title>
        <link>http://biologos.org/blog/series/understanding&#45;evolution&#45;the&#45;evolutionary&#45;origins&#45;of&#45;irreducible&#45;complexity?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/series/understanding&#45;evolution&#45;the&#45;evolutionary&#45;origins&#45;of&#45;irreducible&#45;complexity?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>One of the challenges for discussing evolution within evangelical Christian circles is that there is widespread confusion about how evolution actually works. In this installment, we examine evidence that proteins in irreducibly complex (IC) systems can form and refine new interactions through gradual mechanisms.</description>
        <content:encoded><![CDATA[<h3>Something old and something new; something borrowed and spliced into</h3>

<p>In the last post in this series, we introduced a paper by Chen and colleagues that sought to identify new genes in various <em>Drosophila</em> (fruit fly) species. The youngest (i.e. the most recently evolved) gene they found is one specific to <em>Drosophila melanogaster</em>, the species of fruit fly beloved by geneticists as a model organism. The gene is named “p24-2” (not the most imaginative name, but it serves its purpose) and the gene it is duplicated from is called “Éclair”. The Éclair gene is found in a number of <em>Drosophila</em> species.  A simplified “family tree” of three <em>Drosophila</em> species  (<em>D. melanogaster, D. simulans and D. erecta</em>) is shown below. The duplication event that generated the p24-2 gene happened within the lineage leading to <em>D. melanogaster</em>, but after <em>D. melanogaster</em> and <em>D. simulans</em> separated as distinct species: </p>

<p align="center"><img src="http://biologos.org/uploads/static-content/Venema_UEIC2_1.png" alt="" height="342" width="500"  /></p>

<p>Since the entire genomes of these species are now sequenced and available online, it is possible to look at the chromosome region where the Éclair gene is found in all three. By looking at this region in <em>D. melanogaster</em>, we see that the brand-new p24-2 gene is almost right next door to its “parent” gene, Éclair. Below is a screen shot taken when looking at this region using a <em>Drosophila</em> “<a href="http://flybase.org/cgi-bin/gbrowse/dmel/?Search=1;name=FBgn0260463">genome browser</a>”  that is freely available online. The red arrow indicates the Éclair gene, and we can see p24-2 is just one gene over, and seems to be nested within another gene called “Unc-115b”. The green arrows are pointing to two different “versions” of how p24-2 is made into an mRNA working copy. The Unc-115b gene (blue arrow) has five different mRNA versions. (One of the p24-2 mRNA versions has a lot of Unc-115b sequence that is not used when the p24-2 protein is made).  </p>

<p align="center"><a href="http://biologos.org/uploads/static-content/Venema_UEIC2_2_large.png"><img src="http://biologos.org/uploads/static-content/Venema_UEIC2_2_small.png" alt="" height="285" width="570"  /></a><br />(Click Image to Enlarge)</p>

<p>Finding a duplicated gene next door to the sequence it is copied from is pretty common in genomes – when chromosomes are copied or recombined during cell division, side-by-side copies of parts of chromosomes show up every now and then. It’s also not surprising to see a new gene cobbled together with another gene. In this case, Unc-115b and p24-2 are overlapping but separate functional entities: they each have their own protein sequences, but each includes the code of the other as a sequence that does not actually translate into protein. The details of how this “cobbling” happens aren’t important for this discussion, other than to note that the mechanisms are known and not rare.  In the chart above, then, the orange sections indicate the active parts of the transcribed sequence, while the gray are sections that are included in the RNA molecule, but do not get used directly to code for the new protein. </p>

<p>When we look at this same chromosome region in <em>D. simulans</em> and <em>D. erecta</em>, however, p24-2 is missing. Éclair and Unc-115b are there, but p24-2 is not, since it arose after <em>D. melanogaster</em> separated from its common ancestors with the other species. (Note: this entire region is a mirror image in <em>D. simulans</em> and <em>D. erecta</em> when compared to <em>D. melanogaster</em> due to a large scale chromosome inversion that covers this whole area. So, while it looks “backwards” compared to the image above, that is not surprising, it’s expected):  </p>

<p align="center"><a href="http://biologos.org/uploads/static-content/Venema_UEIC2_3_large.png"><img src="http://biologos.org/uploads/static-content/Venema_UEIC2_3_small.png" alt="" height="255" width="570"  /></a><br />(Click Image to Enlarge)</p>

<p>So, with the p24-2 gene in <em>D. melanogaster</em>, we have a bona-fide, recent gene duplication event. This gene is brand new, evolutionarily speaking (less than 3 million years old, given the calculated speciation times of <em>D. melanogaster</em> and <em>D. simulans</em>). Not only is it brand new, it is also essential for survival in <em>D. melanogaster</em>: if you remove it, the fly dies. Obviously, since every other <em>Drosophila</em> species lacks p24-2, this gene is not essential for survival for any other species. It’s new, and now it’s necessary.  </p>

<h3>Do new, essential genes refute the Intelligent Design (ID) argument from Irreducible Complexity (IC)?</h3>

<p>So far, nothing we have discussed explicitly threatens the ID argument from IC, though it does threaten the ID argument that new information cannot arise through evolution, a topic we have discussed in detail <a href="http://biologos.org/blog/series/origin-information-series">before</a>. Michael Behe, the main ID proponent of the argument from IC, has <a href="http://behe.uncommondescent.com/2011/01/even-more-from-jerry-coyne/">commented</a> on this research by Chen and colleagues (thanks to commenter “Bilbo” for pointing this out). Behe’s rejoinder was to a blog post by biologist and atheist blogger Jerry Coyne, who used the paper by Chen and colleagues to attack Behe’s ideas. Since Behe’s reply deals with his understanding of how gene duplication relates to his argument from IC, I will quote it here at length:  </p>

<blockquote><p>I have never stated, nor do I think, that gene duplication and diversification cannot happen by Darwinian mechanisms, or that “they play almost no role at all” in the unfolding of life. (As a matter of fact, I discussed several examples of that in my 2007 book <em>The Edge of Evolution</em>. That would be silly — why would anyone with knowledge of basic biochemical mechanisms deny that, say, the two gamma-globin coding regions on human chromosome 11 resulted from the duplication of a single gamma-globin gene and then the alteration of a single codon? What I don’t think can happen is that duplication/ divergence by Darwinian mechanisms can build new, complex interactive molecular machines or pathways. Assuming (since he is in fact critiquing them) Professor Coyne has been attentive to my arguments, one background assumption that he may have left unexpressed is that he thinks the newer duplicated genes discovered by Professor Long’s excellent work represent such complex entities, or parts of them. </p>

<p>There is no reason to think so. A gene can duplicate and diversify without building a new machine or network, or even changing function much. The above example of the two gamma-globin genes shows that duplication does not necessarily result in change in function. The examples of delta- and epsilon-globin, which, like gamma-globin, presumably also resulted from the duplication of an ancestral beta-like globin gene, show that sequence can diversify further, but function remain very similar. Even myoglobin, which shares rather little sequence homology with the other globins, has not diverged much in biochemical function. </p>

<p>In his recent work Professor Long discovered that many of the new genes were essential for the viability of the organism — without the gene product, the fruitflies would die before maturity. Perhaps Professor Coyne thinks that that means the genes necessarily are parts of complex systems, or at least do something fundamentally new. Again, however, there is no reason to think so. The notion of “essential” genes is at best ambiguous. We know of examples of proteins that surely appear necessary, but whose genes are dispensable. The classic example is myoglobin. It is also easy to conceive of a simple route to an “essential” duplicate gene that does little new. Suppose, for example, that some gene was duplicated. Although the duplication caused the organism to express more of the protein than was optimum, subsequent mutations in the promoter or protein sequence of one or both of the copies decreased the total activity of the protein to pre-duplication levels. Now, however, if one of the copies is deleted, there is not enough residual protein activity for the organism to survive. The new copy is now “essential”, although it does nothing that the original did not do. </p></blockquote>


<p>The main points of Behe’s reply can be summarized as follows:  </p>

<ol><li>Gene duplications and subsequent changes to the copies (diversification) can and do happen, but the results are nothing really “new”— no new molecular machines or pathways (nor parts of such pathways), nor much in the way of new functions. </li>

<li>Duplicated genes can become essential simply by “sharing” the original function, and then reducing their share to a minimum, perhaps through the amount of protein that each copy makes. Again, this is not anything really new, since the copy doesn’t do anything that the original didn’t do already. So, the finding that some gene copies are essential genes is not a threat to the IC argument.  </li> </ol>

<p>Note that Behe’s reply makes predictions that can be tested with further research. These predictions might be summarized in this way:  </p>

<ol><li><em>If IC is correct, duplicated genes will not be part of new, complex molecular pathways or machines.</em></li> 

<li><em>If IC is correct, duplicated genes that are both essential should “share” the original function.</em></li></ol> 


<h3>Testing IC with new research</h3>

<p>Behe’s reply to the Chen paper is of course hypothetical and speculative – as demonstrated by his own comment that “there is no reason to think” that the duplicated genes are components of new complex pathways or systems. Accordingly, the validity of Behe’s reply depends on its ability to hold up over time as more work is done. Of note, the functions of p24-2 and its parent gene Éclair have been studied intensively since 2010. These studies, as we shall see in the next post in this series, shed quite a bit of light on these questions. </p>

<h3>For further reading:</h3>
<p>Behe, M.J. <em>Darwin’s Black Box: the Biochemical Challenge to Evolution</em>. Free Press, New York, 1996. </p>
<p>Behe, M.J. <em>The Edge of Evolution: the Search for the Limits of Darwinism</em>. Free Press, New York, 2007. </p>
<p>Chen, S., Zhang, Y, and Long, M (2010). New genes in Drosophila quickly become essential. <em>Science</em> 330; 1682-1685. </p><br> </br>



]]></content:encoded>
        <pubDate>Thu, 28 Jun 12 09:55:46 -0700</pubDate>
        <dc:creator>Dennis Venema</dc:creator>
        <!--<dc:date>Jun 28, 2012 09:55</dc:date>-->
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        <title>Adam&apos;s Dream</title>
        <link>http://biologos.org/blog/adams&#45;dream2?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/adams&#45;dream2?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>While the specific “how” of our being made into the image of God will probably always remain a mystery, the Bible and creeds are clear on the “why” of our creation: we were made to worship the Lord, and be in relation with Him and each other.</description>
        <content:encoded><![CDATA[<p>Discussion about Adam as the first divine "Image-bearer" often turns on the perceived conflict between scientific evidence contradicting belief in a single biological ancestor of all living human beings and Scriptural testimony that humans were made different from the rest of the creation: we have capacity to reflect the image of God.</p>

<p>Many posts on this Forum have suggested that the cosmological narrative in Genesis 1 is best read as being primarily about God’s identity and agency, rather than about the physical make-up or material history of the natural world.  Similarly, we demonstrate our highest regard for Genesis 2’s account of the creation of Eve—the second fully human being—by looking to its meaning in terms of spiritual and interpersonal relationships, rather than genetic ones.  While the specific “how” of our being made into the image of God will probably always remain a mystery, the Bible and creeds are clear on the “why” of our creation: we were made to worship the Lord, and be in relation with Him and each other.  That intimate, conscious and deeply symbolic knowledge of our maker and fellow human beings is a profound difference that sets us apart from the other creatures.</p>

<p>I have frequently argued that poets are often the most clear on some of the important issues of our faith, including this one.  Today we feature a work by Robert Siegel, who identifies the imagination as the faculty by which we recognize and name those spiritual relationships.  As he says, “It's the imagination, hence language and art, that establishes the connections”; it is the imagination that allows us to conceive of and name the links between ourselves and creation, ourselves and each other, ourselves and the Creator God.</p>

<p>Though we often focus on Adam’s naming of the animals, and then even of Eve, Siegel helps us remember that it was in <em>hearing</em> his own name that Adam’s whole humanity came into being: he experienced the richness of being called by God to bear His likeness, but also of being called to by one that was profoundly “like him.”  Put another way, we are speakers, but also equally hearers. May we, too, be awakened to ourselves and our image-bearing identity by a still, soft voice saying our name. May we, too, in gratitude and delight, call upon the name of the one, Jesus, who is both our God and our fellow man.</p>


<h3>“Adam’s Dream”</h3>
<p>by Robert Siegel</p>

<p><em>The Imagination may be compared to Adam's dream:<br />
he awoke and found it truth</em>. --Keats</p>

<p>He saw the garden spreading past the trees<br />
he'd been warned to avoid (yet keep a special eye on).<br />
He'd learned by scents, transported by the breeze,<br />
myriads of roses and how, by hand, the scion<br /><br />
of one to graft on another--and what was edible:<br />
whole families of legumes, grasses, roots,<br />
melons, peaches, apples, pears. Incredible,<br />
the variety of tastes just from the fruits!<br /><br />
But it wasn't enough. Even the breathing animals<br />
with friendly grunt or sigh, silken warm side,<br />
and large affectionate eye were not able<br />
to speak. When he named them, none replied:<br /><br />
His words fell dead on the air--though he said<br />
them everywhere, walking or running to each place:<br />
to the mountain, which echoed back the sounds he made,<br />
or the still pool, returning his own gaze.<br /><br />
But no one answered him until one night in a dream<br />
he woke and heard a soft voice speak his name.</p>

<p>“Adam’s Dream” first appeared in issue 3 of <a href="http://stonework03.blogspot.com/2005/11/stonework-issue-3.html" target="_blank">Stonework</a>, the literary journal of Houghton College. &copy; 2001 Robert Siegel</p><br> </br>

<p class="intro">Robert Siegel is the author of nine books of poetry and fiction, most recently <a href="http://www.amazon.com/gp/product/1557254303/ref=as_li_ss_tl?ie=UTF8&tag=thebiofou06-20&linkCode=as2&camp=217145&creative=399369&creativeASIN=1557254303">A Pentecost of Finches: New and Selected Poems</a><img src="http://www.assoc-amazon.com/e/ir?t=&l=as2&o=1&a=1557254303&camp=217145&creative=399369" width="1" height="1" border="0" alt="" style="border:none !important; margin:0px !important;" />. He has received prizes and awards from Poetry, Prairie Schooner, The Transatlantic Review, the Ingram Merrill Foundation, and the National Endowment for the Arts, and his poems have appeared in numerous journals and anthologies.  His fiction includes Alpha Centauri and the Whalesong trilogy, which received the Golden Archer and Matson awards.  With degrees from Wheaton, Johns Hopkins, and Harvard, Siegel has taught at Dartmouth, Princeton, and Goethe University in Frankfurt, and for twenty-three years at the University of Wisconsin-Milwaukee, where he directed the graduate creative writing program and is currently professor emeritus of English. He is married to Ann Hill Siegel, a photographer, and lives on the coast of Maine.</p><b></br>]]></content:encoded>
        <pubDate>Sun, 20 May 12 05:39:50 -0700</pubDate>
        <dc:creator>Mark Sprinkle</dc:creator>
        <!--<dc:date>May 20, 2012 05:39</dc:date>-->
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        <title>Theory, Prediction and Converging Lines of Evidence, Part 2</title>
        <link>http://biologos.org/blog/understanding&#45;evolution&#45;theory&#45;prediction&#45;and&#45;evidence&#45;2?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;2?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>We have already discussed hind limb and hair loss in whales, and now we turn to one of the remaining questions: tooth loss in the lineage leading to modern toothless whales.</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 continue to explore how whale evolution is supported by converging lines of evidence from developmental biology and genetics. </p>

<p>In the <a href="http://biologos.org/blog/understanding-evolution-theory-prediction-and-evidence-1">previous post</a> in this series, we explored how evolution can force science into making predictions that seem counter-intuitive. For cetacean (whale) evolution, we saw that the preliminary lines of evidence (the fact that whales are vertebrates, and mammals, for instance) pointed to the prediction that modern whales are descended from four-limbed, land-dwelling ancestors. As we then noted:</p>

<blockquote><p>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> </blockquote>

<p>We have already discussed hind limb and  hair loss in whales, citing evidence from embryonic development in modern whales that shows how hair and hind limbs develop early in their embryogenesis, but then are lost at later stages. We now turn to one of the remaining questions: tooth loss in the lineage leading to modern toothless whales (order Mysticeti). To obtain their food these whales pass seawater through a <em>baleen</em>, a large sieve-like structure that filters out plankton, small fish and other food items. Some recent genetics sleuthing has investigated a portion of this riddle, and adds further details to the story of how the baleen whales came to be.</p>

<p align="center"><img src="http://biologos.org/uploads/static-content/humpback_whale_sml.jpg" alt="" height="337" width="450"  /></p>

<h3>Evolution: A Theory with Bite</h3>
<p>If indeed modern whales are descended from ancestral, four-limbed, terrestrial ancestors, then those ancestors, like mammals in general, had teeth. Modern toothed whales (order Odontoceti) have retained those teeth to the present day, but baleen whales have adopted a new way of life as filter-feeders. Researchers were curious to see if traces of a “toothed past” could be found in the genomes of modern baleen whales, so they went hunting for remnants of genes devoted to making teeth. Such defective gene remnants would be examples of <em>pseudogenes</em>, and we have discussed pseudogenes previously in this series. While pseudogenes in and of themselves are powerful evidence for evolution, pseudogenes that are “out of place” are especially so. One such example we have seen before is the human <em>vitellogenin</em> pseudogene, the remains of a gene used for yolk production in egg-laying organisms found in the exact location in the genome that evolution would predict for it. As mammals that receive embryonic nourishment through a placenta, we have no need of egg-yolk genes. Similarly, baleen whales have no need for genes responsible for making teeth, and finding the remnants of such genes would make a strong case for an evolutionary origin of baleen whales as the modified descendents of toothed whale ancestors.</p>

<h3>Independent Lines of Evidence, but Contradictory Stories?</h3>
<p>Some of the genes known to be used in all mammals for tooth formation were the obvious candidate genes to start with: the products of the ameloblastin, amelogenin, and enamelin genes are all used in the formation of tooth enamel, the hardest structure in the vertebrate skeleton. Researchers went looking for these genes in several Mysticete (i.e. toothless whale) species. The results showed that all the species studied did indeed have these three genes present as pseudogenes (and more specifically, as <em>unitary</em> pseudogenes, a special class of pseudogene we have discussed in detail <a href="http://biologos.org/blog/understanding-evolution-is-there-junk-in-your-genome-part-4">previously</a>). Finding these genes as pseudogenes in toothless whales was exactly what evolution predicted, but there was a catch: none of the mutations that removed the functions of these three genes were shared between different species, suggesting that these genes lost their function independently in the species studied. This finding was at odds with data from the fossil record, which suggested that teeth were lost only once, and early in the lineage leading to all modern toothless whales. So, the researchers seemed to have two lines of evidence that at face value contradicted each other. The fossil record suggested that tooth loss occurred once in the common ancestor of all toothless whales, but these three genes seemed to have been inactivated independently, several times over, suggesting that loss of teeth should be happening later in Mysticete evolution, and more than once.</p>

<p>One proposed explanation for the apparent discrepancy (among several put forward) was to predict that a fourth gene required for enamel formation was lost early in Mysticete evolution. The loss of any one gene necessary for forming enamel would be enough to prevent the process altogether. In this case, the loss of this fourth gene would prevent tooth enamel from forming, even though the genetic sequences of the other three enamel genes would still be intact. Once enamel function was lost, random mutations in the remaining enamel genes could then accumulate later in Mysticete evolution after speciation in this group was already underway. To test this hypothesis, the research group went hunting for other enamel genes in toothless whales.</p>

<h3>Signature in the SINE</h3>
<p>The smoking gun for tooth loss in Mysticetes turned out to be exactly what was predicted: a fourth gene, necessary for enamel production, and mutated with the same inactivating mutation in all modern toothless whales. The gene in question, named <em>enamelysin</em>, was destroyed when a mobile genetic element called a SINE transposon inserted into it, breaking it into two halves and removing its function:</p>
 
<p align="center"><img src="http://biologos.org/uploads/static-content/whale_evolution_fig_2_1.jpg" alt="" height="273" width="570"  /></p>

<p>The fact that the same SINE insertion mutation at an identical location is found in all modern Mysticete species indicates that this mutation happened once in a common ancestor and then was inherited by the entire group.  Since this must have occurred early in the evolution of toothless whales in order to happen in the common ancestor of the entire group, the picture from the genetics and the fossil record match. Once again, findings in one discipline (in this case, paleontology) can be used to make very detailed predictions about what another, unrelated discipline (comparative genomics) should reveal. These results are also entirely consistent with the observation, made in the 1920s, that toothless whales form tooth buds during embryogenesis that are later reabsorbed prior to the point when the deposition of enamel would begin. As with the hind limb story in whale evolution, lines of evidence from genetics, paleontology and embryology converge to support the hypothesis that modern toothless whales descend, through modification, from toothed ancestors.</p>

<p>In the next post in this series, we’ll examine a few more lines of evidence for whale evolution, and extend our discussion to converging lines of evidence for the evolution of our own species.</p>

<h3>For further reading:</h3>

<p>Meredith, R.W., Gatesy, J., Cjeng, J., and Springer, M.S. (2011). Pseudogenization of the tooth gene enamelysin (MMP20) in the common ancestor of extant baleen whales. Proceedings of the Royal Society B: 278 (1708); 993 – 1002. Available online: <a href="http://rspb.royalsocietypublishing.org/content/early/2010/09/16/rspb.2010.1280.full.pdf">http://rspb.royalsocietypublishing.org/content/early/2010/09/16/rspb.2010.1280.full.pdf</a></p>

<p>Ridewood, W.G. (1923). Observations on the skull in foetal specimens of whales of the genera Megaptera and Balaenoptera. Philosophical Transactions of the Royal Society of London B: 211; 209 - 272. Available online: <a href="http://rstb.royalsocietypublishing.org/content/211/382-390/209.full.pdf">http://rstb.royalsocietypublishing.org/content/211/382-390/209.full.pdf</a></p>

<p>See Related Posts in the sidebar</p>
]]></content:encoded>
        <pubDate>Thu, 22 Mar 12 04:58:49 -0700</pubDate>
        <dc:creator>Dennis Venema</dc:creator>
        <!--<dc:date>Mar 22, 2012 04:58</dc:date>-->
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        <title>What is the genetic evidence for evolution?</title>
        <link>http://biologos.org/questions/genetic&#45;evidence?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/questions/genetic&#45;evidence?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>Darwin developed his theory of evolution by looking at scientific evidence available in the mid&#45;1800s.  Since then, the whole field of genetics has developed, adding a powerful independent line of evidence in support of evolution.  Genes show how the physical traits of living things are handed down and modified from one generation to the next.  By comparing the DNA of many organisms, scientists can map the relationships between species.  This map is in remarkable agreement with Darwin’s predictions.  The structure of chromosomes and particular genetic sequences point to the conclusion not just of common design, but common descent as well.</description>
        <content:encoded><![CDATA[<p><em>Coming Soon</em></p>]]></content:encoded>
        <pubDate>Thu, 15 Mar 12 12:38:52 -0700</pubDate>
        <dc:creator></dc:creator>
        <!--<dc:date>Mar 15, 2012 12:38</dc:date>-->
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        <title>Possibilities and Second Chances</title>
        <link>http://biologos.org/blog/possibilities&#45;and&#45;second&#45;chances?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/possibilities&#45;and&#45;second&#45;chances?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>In today’s video, Dr. Rick Colling states that evolution is not merely the imposition of death and destruction and survival of the fittest. Rather, it is about second chances.</description>
        <content:encoded><![CDATA[<p align="center"><iframe src="http://player.vimeo.com/video/37257770" width="570" height="321" frameborder="0" webkitAllowFullScreen mozallowfullscreen allowFullScreen></iframe></p>

<p class="intro">Today's video is courtesy of filmmaker Ryan Pettey, director/editor of Satellite Pictures, and features Dr. Rick Colling, biologist and author of <em>Random Designer</em>.</p>

<p>In today’s video, Dr. Rick Colling states that one of the biggest difficulties in communicating compatibility between evolution and faith is a misunderstanding of what evolution is. Evolution is not, he says, about the imposition of death and destruction and survival of the fittest. Rather, it is about second chances. Our bodies contain thousands of genes, which duplicate like a computer back-up copy and can serve as raw material. When an organism encounters adverse environmental condition, this raw material can be used to help adapt and survive.</p>

<p>“God is so creative," says Colling, "that he’s actually put into place a mechanism to start doing these gene changes in advance before they’re even needed. And God has given us a second change through the evolutionary process of creating duplicate genes that give rise to new raw material that give rise to new possibilities, and that really more accurately describes the process of evolution. It’s redemption, it’s possibility, and it’s hope.”</p>]]></content:encoded>
        <pubDate>Wed, 22 Feb 12 10:17:28 -0800</pubDate>
        <dc:creator>Richard Colling</dc:creator>
        <!--<dc:date>Feb 22, 2012 10:17</dc:date>-->
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        <title>Series: Understanding Evolution: Is There “Junk” in Your Genome?</title>
        <link>http://biologos.org/blog/series/understanding&#45;evolution&#45;is&#45;there&#45;junk&#45;in&#45;your&#45;genome?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</link>
        <guid>http://biologos.org/blog/series/understanding&#45;evolution&#45;is&#45;there&#45;junk&#45;in&#45;your&#45;genome?utm_source=RSS_Feed&amp;utm_medium=RSS&amp;utm_campaign=RSS_Syndication</guid>
        <description>One of the challenges for discussing evolution within evangelical Christian circles is that there is widespread confusion about how evolution actually works. In this installment on “junk DNA”, we explore how genomics can be employed to test for non&#45;functional sequences by comparing sequences between related organisms.</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 first of several posts on “junk DNA”, we explore how genomics can be employed to test for non-functional sequences by comparing sequences between related organisms.  As you finish reading the essay, see if you can figure out the meaning of the figure above.  We'll pose a question at the end.  </p> 

<h3>Do genomes have non-functional sequences?</h3>
<p>There are various ways to test the hypothesis that certain regions of DNA are non-functional, and in this series we will explore some of them. One way to estimate the fraction of non-functional DNA in a particular genome is to determine which portions of the genome can be freely altered by mutation without consequence to the organism. DNA sequences that cannot be mutated freely without a loss in function are said to be under <em>purifying selection</em>: as mutated forms of this sequence arise in a population, the loss of function associated with the mutated sequence reduces the likelihood that the organism will pass this mutation on to future generations. This type of mutation, in a functional sequence, has deleterious consequences. Another way to put it is that functional sequences are subject to natural selection, which acts as a filter to “purify” the genome at a particular location, but that non-functional sequences are free from the constraints of selection, and “anything goes” with respect to mutation.</p>

<h3>Tell us again, Grandpa!</h3>
<p>One way to think about this is to consider a humorous story that is told within an extended family (I think every family has these types of stories – I know my kids love to hear certain ones told and retold again). Certain incidental details of the story can be altered from telling to telling, and perhaps Uncle Joe tells it a certain way but Uncle Jeff tells it another with respect to those types of details. There are, however, certain features of the story that are absolutely non-negotiable, or the story doesn’t “work” (and telling these parts incorrectly will generate protests and corrections from the kids who know how the story goes and insist that you are not telling it correctly). These types of stories, like genomes, have some bits that can freely change and others that can’t. The bits that can’t change are under constraint and, in biological terms, subject to selection. The same factors apply in more concise form to jokes: some bits can change (and do, as the joke is told and retold) – but some bits cannot (for example, the punch line).</p>
 
<p>The best way to test for purifying selection is to compare the genomes of related organisms that have been separate species for some time. (To continue our analogy, you could determine what parts of the story are really important by comparing how each of the uncles tells it and listing out the parts that are the same in all the various versions). The genomes in the two species are modified versions of the same genome present in the common ancestor species: they started as virtually identical but have since experienced mutations in different locations over time. Mutations in functional sequences will have been subject to purifying selection to remove loss-of-function mutations, whereas mutations will have freely accumulated in non-functional sequences. The two genomes are thus a collection of similarities and differences, as we have <a href="http://biologos.org/blog/signature-in-the-synteny">discussed before</a>:</p>

<blockquote><p>In some ways, comparing the DNA sequence between related organisms is like reading alternative history novels. The hypothesis of common ancestry between similar organisms makes a very straightforward prediction about their genomes: it simply predicts that they were once the same genome, in the same ancestral species. This hypothesis also predicts that these two genomes, having gone their separate ways in the diverged species, will have accumulated changes once they separated. Like an alternative history, each genome has the same backstory, and then a history independent from the other after the point of separation.</p></blockquote>

<p>These similarities and differences, however, will not be randomly distributed. Sequences subject to purifying selection will have fewer differences than sequences that can freely mutate. Accordingly, when compared side-by-side, the two genomes should have regions where differences are common, and where differences are rare. For example, consider a genome segment in two related species where there is one gene present. This gene has some regions that cannot be changed without significant consequences (the DNA letters that code for the amino acid sequence of the gene product, for example) and some regions that can be mutated without consequence (such as some sequences inside introns, the non-coding segments that separate gene coding segments and are spliced out of the final gene product):</p> 
 
<p align="center"><img src="http://biologos.org/uploads/static-content/junk_DNA_fig_1.jpg" alt="" height="299" width="570"  /></p>

<p>What biologists observe  when comparing sequences like this between two related organisms is that coding sequences, which obviously are required for the gene’s function, have far fewer differences between them than do sequences found in introns or in between genes. The idea is not that mutations are preferentially happening in those areas, but that mutations can occur everywhere in the genome, but are more likely to be selected out of populations if they alter functional sequences.</p>

<h3>The expanding data set</h3>
<p>This type of analysis gets easier to do the longer two species have been separated, and the more species one has to compare to each other. Very recently separated species will have a very high degree of genetic similarity simply because neither species has had appreciable mutations to a common ancestral genome. As such it is difficult to pick out the sequences that have been subject to selection, since functional and non-functional sequences are both still highly similar (virtually identical). It is only as species have been separated for a long time that a pattern begins to emerge: sequences that are functional remain “constrained” by purifying selection to remain more similar, and non-functional sequences accumulate mutations in the separate lineages that make them less and less alike.</p>

<p>Now that biologists have access to a wide range of mammalian genomes, this type of analysis has been done on the human genome with ever-increasing precision. Early studies comparing the human genome to other genomes, such as the mouse genome (compared in 2002) and dog genome (2005), suggested that only a small fraction of the human genome was subject to purifying selection (about 5%). Recent work published a few months ago has taken this approach to a whole new level: a genome-wide comparison of 29 mammalian species (!). These results are exciting from a biological perspective because this work helps scientists tease out what bits of the human genome are under selection, and what bits aren’t (which isn’t always obvious, because we don’t always know what sequences are functional or non-functional). This type of approach is non-biased: it requires no prior hypotheses of what types of sequences to look for, but rather simply looks for what has been selected to remain more similar over time. The results, based on the (very nearly) whole-genome sequences of 29 placental mammals, are in keeping with previous estimates: about 5-6% of the human genome is under purifying selection, and the rest appears to be rather free to accumulate changes. As a species, our genome seems to be about 95% incidental details and 5% punch line.</p>

<p>So, what sorts of things lurk out there in the “other” 95%? In the next post in this series, we’ll head out into the wilds of the human genome and have a look.    </p>

<p class="intro"> Editors Note:  So now that you've read the essay, see if you can surmise the meaning of the figure at the top. This is a tiny stretch of DNA, 21 bases (units of code) long. Why do you think position #4 shows only an A and position #5 shows only a G, whereas other positions are not restricted in this manner?  Pretend that you could represent the genome as a whole in this manner.  Of the 3 billion bases in our genome, how many of them would be configured like position #4 or #5?  What about the rest?  Is the specific base (unit of code) functionally important for that set?   Upon what, do you base your conclusions.?  Finally  do the presuppositions of the Intelligent Design Movement and Reasons to Believe pivot on how to interpret this data?  How would such proponents interpret the data differently than mainstream biologists?  Feel free to address these questions in the comment section or, if you prefer, just reflect on them. </p>

<h3>For further reading:</h3>
<p class="date">Lindblad-Toh, K., et al. (2011). A high-resolution map of human evolutionary constraint using 29 mammals. Nature 478 (27), 476-482.<br />
<a href="http://www.nature.com/nature/journal/v478/n7370/full/nature10530.html" target="_blank">http://www.nature.com/nature/journal/v478/n7370/full/nature10530.html</a></p>]]></content:encoded>
        <pubDate>Fri, 17 Feb 12 04:21:25 -0800</pubDate>
        <dc:creator>Dennis Venema</dc:creator>
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