Difference between revisions of "Team:Tianjin/Demonstrate"

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                     <div class="small_pic_demo" align="center">
 
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                         <a href="#pic_fifty seven">
 
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                           <img src="https://2017.igem.org/File:Heavy-metal-jiaotu.jpg"></a>
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                           <img src="https://static.igem.org/mediawiki/2017/b/b7/Heavy-metal-jiaotu.jpg"></a>
 
<p style="font-size:15px;text-align:center"><br/>Figure 1. This is a simplified version of this vector expressing the Cre recombinase enzyme. CRE-EBD is the coding sequence of Cre recombinase; PCLB2 is a constitutive  promoter in yeast; CYC1 is a terminator.</p>
 
<p style="font-size:15px;text-align:center"><br/>Figure 1. This is a simplified version of this vector expressing the Cre recombinase enzyme. CRE-EBD is the coding sequence of Cre recombinase; PCLB2 is a constitutive  promoter in yeast; CYC1 is a terminator.</p>
 
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                     </div>
 
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                   <div id="pic_fifty seven" style="display:none;"><img src="https://2017.igem.org/File:Heavy-metal-jiaotu.jpg"><p style="font-size:15px;text-align:center"><br/>Figure 1. This is a simplified version of this vector expressing the Cre recombinase enzyme. CRE-EBD is the coding sequence of Cre recombinase; PCLB2 is a constitutive  promoter in yeast; CYC1 is a terminator.</p></div>  
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                   <div id="pic_fifty seven" style="display:none;"><img src="https://static.igem.org/mediawiki/2017/b/b7/Heavy-metal-jiaotu.jpg"><p style="font-size:15px;text-align:center"><br/>Figure 1. This is a simplified version of this vector expressing the Cre recombinase enzyme. CRE-EBD is the coding sequence of Cre recombinase; PCLB2 is a constitutive  promoter in yeast; CYC1 is a terminator.</p></div>  
  
 
<p>Fig.X0 the results of PCR. We use <i>2k plus Ⅱ</i> as the marker. On four parallel lanes of the gel (number 1,2,3,4), run were four set of DNA molecules of known size ( 327bp for number 1, the <i>LIMT</i>; 186bp for number 2 and 3, the <i>Cup1</i>; 3114bp for number 4,the whole sequence contained <i>Cup1</i>). From the DNA band of number 1, we could analyze that <i>vika</i> has been expressed to delete the <i>Cup1</i> and its terminor, so we can get the <i>LIMT</i>. From the DNA band of number 2, 3 and 4, we could delightedly prove that the fragments (<i>TEF</i> promoter, <i>Cup1</i> and <i>ura3</i> terminator) have successfully transformed to synthetic chromosome <i>V</i>. </p>
 
<p>Fig.X0 the results of PCR. We use <i>2k plus Ⅱ</i> as the marker. On four parallel lanes of the gel (number 1,2,3,4), run were four set of DNA molecules of known size ( 327bp for number 1, the <i>LIMT</i>; 186bp for number 2 and 3, the <i>Cup1</i>; 3114bp for number 4,the whole sequence contained <i>Cup1</i>). From the DNA band of number 1, we could analyze that <i>vika</i> has been expressed to delete the <i>Cup1</i> and its terminor, so we can get the <i>LIMT</i>. From the DNA band of number 2, 3 and 4, we could delightedly prove that the fragments (<i>TEF</i> promoter, <i>Cup1</i> and <i>ura3</i> terminator) have successfully transformed to synthetic chromosome <i>V</i>. </p>

Revision as of 19:06, 27 October 2017

/* OVERRIDE IGEM SETTINGS */

Demonstrate