Difference between revisions of "Team:Tianjin/Demonstrate"

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<h4>overview</h4>
 
<h4>overview</h4>
 
<hr>
 
<hr>
<p>Our HPers have conducteded research in Shanxi Province. They found some factories directly choose to only deal with one main kind of the heavy metals, then abandon others. The convenient treatment obviously can't satisfy the environmental requirements. Hence, we demand a type of bacterium to handle two types of heavy metal ions together.</p>
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<p>Our HPers have conducteded research in Shanxi Province. They found factories directly choose to deal with only one main kind of the heavy metals, then abandon others. The convenient treatment obviously can't satisfy the environmental requirements. Thus, we demand a type of bacterium to handle two types of heavy metal ions together.</p>
<p>The genetic circuit based on the Vika-Vox system enables stepwise treatment, owing to a switch from the expression of <i>Cup1</i> (copper accumulation) to <i>LIMT</i> (cadmium accumulation). We grow our yeasts and measure the concentration of heavy metal ions in the supernatant at equal intervals to test the efficiency of our system. </p>
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<p>The genetic circuit based on the <i>Vika-Vox</i> system enables stepwise treatment, owing to a switch from the expression of <i>Cup1</i> (copper accumulation) to <i>LIMT</i> (cadmium accumulation). We grow our yeasts and measure the concentration of heavy metal ions in the supernatant at equal intervals to test the efficiency of our system. </p>
 
<h4>Construction</h4>
 
<h4>Construction</h4>
 
<hr>
 
<hr>
<p>The <i>TEF</i> promoter, the <i>Cup1</i> gene, and the <i>Ura3</i> terminator are ligated together, integrated into vox-ura3-vox system by homologous recombination. <i>5-FOA</i> plate helps us to screen the correct cell. Similarly, the <i>LIMT</i> gene and the <i>Ura3</i> nutritional label are integrated into the synthetic chromosome <i>V</i>, too.</p>
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<p>The <i>TEF</i> promoter, the <i>Cup1</i> gene, and the <i>Ura3</i> terminator are ligated together, integrated into <i>vox-ura3-vox</i> system by homologous recombination. <i>5-FOA</i> plate helps us to screen the correct cell. Similarly, the <i>LIMT</i> gene and the <i>Ura3</i> nutritional label are integrated into the synthetic chromosome <i>V</i>, too.</p>
 
<p>PCR is used to check if we successfully completed the molecular biology construction.</p>
 
<p>PCR is used to check if we successfully completed the molecular biology construction.</p>
 
<div class="zxx_zoom_demo_qqqqqqq" align="center">
 
<div class="zxx_zoom_demo_qqqqqqq" align="center">
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                   <div id="pic_seventy-five" 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 5-1. The results of PCR of our S.C-Cu. LIMT gene (length of 319bp) 、Cup1(length of 186bp) and complete sequence(length of 3114bp)have been amplified. which indicated that we succeeded in the construction of genetic circuit.</p></div>  
 
                   <div id="pic_seventy-five" 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 5-1. The results of PCR of our S.C-Cu. LIMT gene (length of 319bp) 、Cup1(length of 186bp) and complete sequence(length of 3114bp)have been amplified. which indicated that we succeeded in the construction of genetic circuit.</p></div>  
  
<p>Fig.5-1 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 ( 319bp 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>
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<p>Fig.5-1 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 (319bp 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>
  
 
<h4>Accumulation</h4>
 
<h4>Accumulation</h4>
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                   <div id="pic_eighty" style="display:none;"><img src="https://static.igem.org/mediawiki/2017/6/6b/Design.cu-cd.curve.png"><p style="font-size:15px;text-align:center"><br/>Figure 5-4. S.C-Cu is cultivated in medium with <i> raffinose </i> including 320mg/L copper ions and 6mg/L Cadmium.<i>galactose</i> is added at 12 hours to turn on "switch".</p></div>
 
                   <div id="pic_eighty" style="display:none;"><img src="https://static.igem.org/mediawiki/2017/6/6b/Design.cu-cd.curve.png"><p style="font-size:15px;text-align:center"><br/>Figure 5-4. S.C-Cu is cultivated in medium with <i> raffinose </i> including 320mg/L copper ions and 6mg/L Cadmium.<i>galactose</i> is added at 12 hours to turn on "switch".</p></div>
 
   
 
   
<p>Fig.5-4 clearly shows the change of the concentration of heavy metal ions in the supernatant. Firstly, the Cu yeast works smoothly. The concentration of copper ions declines over time while that of cadmium ions barely changes. 12 hours later, we add <i>galactose</i> to the solution. Situation changes. <i>Galactose</i> induces the enzyme, changing Cu yeast to Cd yeast. It leads to faster adsorption of cadmium but slower for copper..</p>
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<p>Fig.5-4 clearly shows the change of the concentration of heavy metal ions in the supernatant. Firstly, the Cu yeast works smoothly. The concentration of copper ions declines over time while that of cadmium ions barely changes. 12 hours later, we add <i>galactose</i> to the solution. Situation changes. <i>Galactose</i> induces the enzyme, changing Cu yeast to Cd yeast. It leads to faster adsorption of cadmium but slower for copper.</p>
 
<h4> DISCUSSION & FUTURE WORK</h4>
 
<h4> DISCUSSION & FUTURE WORK</h4>
 
<hr>
 
<hr>

Revision as of 16:47, 1 November 2017

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Demonstrate