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	<title>dnawellnessinfo.com&#187; Genetic Code</title>
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		<title>Scientists develop universal DNA reader to advance faster, cheaper sequencing efforts</title>
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		<pubDate>Thu, 11 Feb 2010 13:31:06 +0000</pubDate>
		<dc:creator>DNAWellness</dc:creator>
				<category><![CDATA[DNA Medicine]]></category>
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		<description><![CDATA[2/11/10 &#8211; physorg.com Led by ASU Regents&#8217; Professor Stuart Lindsay, director of the Biodesign Institute&#8217;s Center for Single Molecule Biophysics, the ASU team is one of a handful that has received stimulus funds for a National Human Genome Research Initiative, part of the National Institutes of Health, to make DNA genome sequencing as widespread as [...]<p><a href="http://dnawellnessinfo.com/dna-medicine/scientists-develop-universal-dna-reader-advance-faster-cheaper-sequencing-efforts/">Scientists develop universal DNA reader to advance faster, cheaper sequencing efforts</a> is a post from: <a href="http://dnawellnessinfo.com">dnawellnessinfo.com</a></p>
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<p>2/11/10 &#8211; physorg.com</p>
<p>Led by ASU Regents&#8217; Professor Stuart Lindsay, director of the  Biodesign Institute&#8217;s Center for Single Molecule Biophysics, the ASU team is one  of a handful that has received stimulus funds for a National Human Genome  Research Initiative, part of the National Institutes of Health, to make <a rel="tag" href="http://www.physorg.com/tags/dna/">DNA</a> genome  sequencing as widespread as a routine medical checkup.</p>
<p>The broad goal of this &#8220;$1000 genome&#8221; initiative is to  develop a next-generation DNA sequencing technology to usher in the age of  personalized medicine, where knowledge of an individual&#8217;s complete, 3  billion-long code of DNA information, or genome, will allow for a more tailored  approach to disease diagnosis and treatment. With current technologies taking  almost a year to complete at a cost of several hundreds of thousands of dollars,  less than 20 individuals on the planet have had their whole genomes sequenced to  date.</p>
<p>To make their research dream a reality, Lindsay&#8217;s team has  envisioned building a tiny, nanoscale DNA reader that could work like a  supermarket checkout scanner, distinguishing between the four chemical letters  of the DNA genetic code, abbreviated by A, G, C, and T, as they rapidly pass by  the reader.</p>
<p>To do so, they needed to develop the nanotechnology  equivalent of threading the eye of a needle. In this case, the DNA would be the  thread that could be recognized as it moved past the reader &#8216;eye.&#8217; During the  past few years, Lindsay&#8217;s team has made steady progress, and first demonstrated  the ability to read individual DNA sequences in 2008—but this approach was  limited because they had to use four separate readers to recognize each of the  DNA bases. More recently, they demonstrated the ability to thread DNA sequences  through the narrow hole of a fundamental building block of nanotechnology, the  carbon nanotube.</p>
<p>Lindsay&#8217;s team relies on the eyes of nanotechnology, scanning  tunneling- (STM) and atomic force- (ATM) microscopes, to make their  measurements. The microscopes have a delicate electrode tip that is held very  close to the DNA sample.</p>
<p>In their latest innovation, Lindsay&#8217;s team made two  electrodes, one on the end of microscope probe, and another on the surface, that  had their tiny ends chemically modified to attract and catch the DNA between a  gap like a pair of chemical tweezers. The gap between these functionalized  electrodes had to be adjusted to find the chemical bonding sweet spot, so that  when a single chemical base of DNA passed through a tiny, 2.5 nanometer gap  between two gold electrodes, it momentarily sticks to the electrodes and a small  increase in the current is detected. Any smaller, and the molecules would be  able to bind in many configurations, confusing the readout, any bigger and  smaller bases would not be detected.</p>
<p>&#8220;What we did was to narrow the number of types of bound  configurations to just one per DNA base,&#8221; said Lindsay. &#8220;The beauty of the  approach is that all the four bases just fit the 2.5 nanometer gap, so it is one  size fits all, but only just so!&#8221;</p>
<p>At this scale, which is just a few atomic diameters wide,  quantum phenomena are at play where the electrons can actually leak from one  electrode to the other, tunneling through the DNA bases in the process.</p>
<p>Each of the chemical bases of the DNA <a rel="tag" href="http://www.physorg.com/tags/genetic+code/">genetic code</a>,  abbreviated A, C, T or G, gives a unique electrical signature as they pass  between the gap in the electrodes. By trial and error, and a bit of serendipity,  they discovered that just a single chemical modification to both electrodes  could distinguish between all 4 DNA bases.</p>
<p>&#8220;We&#8217;ve now made a generic DNA sequence reader and are the  first group to report the detection of all 4 DNA bases in one tunnel gap,&#8221; said  Lindsay. &#8220;Also, the control experiments show that there is a certain (poor)  level of discrimination with even bare electrodes (the control experiments) and  this is in itself, a first too.&#8221;</p>
<p>&#8220;We were quite surprised about binding to bare electrodes  because, like many physicists, we had always assumed that the bases would just  tumble through. But actually, any surface chemist will tell you that the bases  have weak chemical interactions with metal surfaces.&#8221;</p>
<p>Next, Lindsay&#8217;s group is hard at work trying to adapt the  reader to work in water-based solutions, a critically practical step for DNA  sequencing applications. Also, the team would like to combine the reader  capabilities with the carbon nanotube technology to work on reading short  stretches of DNA.</p>
<div>
<p>If the process can be perfected, DNA sequencing could be performedmuch faster than current technology, and at a fraction of the cost. Only then  will the promise of personalized medicine reach a mass audience.</p></div>
<p><!-- additional info --><strong>More information:</strong> The Nano Letters  research article can be accessed online at URL: <a href="http://pubs.acs.org/doi/pdfplus/10.1021/nl1001185" target="_blank">http://pubs.acs.org/doi/pdfplus/10.1021/nl1001185</a></p>
<p>Provided by Arizona State University (<a rel="news" href="http://www.physorg.com/partners/arizona-state-university/">news</a> : <a href="http://www.asu.edu/" target="_blank">web</a>)</p>
<p>DNAWellnessinfo.com Resource:  <a title="physorg.com" href="http://www.physorg.com/news185129971.html" target="_blank">http://www.physorg.com/news185129971.html</a></p>
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