Difference between revisions of "Team:Tianjin/Demonstrate"

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<h5>1) Proof of Existence of Device Parts</h5>
 
<h5>1) Proof of Existence of Device Parts</h5>
   <p>We built three device parts in total. They are integrated into the chromosomes of <i>Saccharomyces cerevisiae</i> by transformation. We use colony PCR to proof the existence of these three parts in our strain. The result is showed as below.</p>
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   <p>We built three device parts in total. They were integrated into the chromosomes of <i>Saccharomyces cerevisiae</i> by transformation. We used colony PCR to proof the existence of these three parts in our strain. The result is showed as below.</p>
  
  
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   <p>The PCR’s results confirmed that the target genes were ligated into chromosome correctly.</p>
 
   <p>The PCR’s results confirmed that the target genes were ligated into chromosome correctly.</p>
   <h5>2) Verification of RFP in the TVRVC</h5>
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   <h5>2) Verification of RFP in the colony</h5>
 
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   <p>The main characterization method of verification of <i>RFP</i> in the <b><i>TVRVC</i></b> applied by us is observing the expression of <i>red fluorescent protein</i> under the fluorescence microscope. By this way, it will be much more intuitive so that we can directly get the results. We took pictures under different visions and the results are as follows.All the experiment including <b><i>PVRVC</i></b> regulation system use this assay method.</p>
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   <p>The main characterization method of verification of <i>RFP</i> in the <b><i>TVRVC</i></b> applied by us is observing the expression of <i>red fluorescent protein</i> under the fluorescence microscope. By this way, it will be much more intuitive so that we can directly get the results. We took pictures under different visions and the results are as follows.The experiments of <b><i>PVRVC</i></b> regulation system use this assay method.</p>
  
 
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   <h5>3) Result of Mating</h5>
 
   <h5>3) Result of Mating</h5>
 
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   <p>After we got the strain that introduced the <i>red fluorescent protein</i> gene, we let it mate with another mating type haploid yeast, which had plasmid with <i>vika</i> gene. The result is showed as follows:</p>
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   <p>After we got the strain that introduced the <i>yEmRFP</i> gene, we let it mate with another mating type haploid yeast, which had plasmid with <i>vika</i> gene. The result is showed as follows:</p>
 
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<br>The upper left corner of the microorganism is synthetic <i>Saccharomyces cerevisiae</i>, we integrated modified fragment into its <i>synthetic chromosome V</i>. (<b><i>PVUVC</i></b>) The upper right corner is also synthetic <i>Saccharomyces cerevisiae</i>. (<b><i>PVRVC</i></b>) It is imported <i>red fluorescent protein</i> gene based on the upper left corner of the yeast. Both of them are single-celled organism called a. The lower right corner of the yeast is another mating type of haploid yeast called α. It has plasmid <i>pRS416</i> with <i>vika</i> gene. The yeast in the lower left corner are diploid <i>Saccharomyces cerevisiae</i>, which is obtained by mating the two yeasts on the right side of the figure.</br></p></div>  
 
<br>The upper left corner of the microorganism is synthetic <i>Saccharomyces cerevisiae</i>, we integrated modified fragment into its <i>synthetic chromosome V</i>. (<b><i>PVUVC</i></b>) The upper right corner is also synthetic <i>Saccharomyces cerevisiae</i>. (<b><i>PVRVC</i></b>) It is imported <i>red fluorescent protein</i> gene based on the upper left corner of the yeast. Both of them are single-celled organism called a. The lower right corner of the yeast is another mating type of haploid yeast called α. It has plasmid <i>pRS416</i> with <i>vika</i> gene. The yeast in the lower left corner are diploid <i>Saccharomyces cerevisiae</i>, which is obtained by mating the two yeasts on the right side of the figure.</br></p></div>  
  
   <p>The yellow colony in the figure is mating successfully. After the induction of <i>galactose</i>, <i>vika recombinase</i> was expressed, and <i>red fluorescent protein</i> gene and terminator was deleted so that <i>β-carotene</i> expresses. The color of colony was changed from white to yellow. In addition to it, we also tried other methods to turn on the switch.</p>
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   <p>The yellow colony in the figure is mating successfully. After the induction of <i>galactose</i>, <i>vika recombinase</i> was expressed, and <i>yEmRFP</i> gene and terminator was deleted so that <i>β-carotene</i> expresses. The color of colony was changed from white to yellow. In addition to it, we also tried other methods to turn on the switch.</p>
  
 
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<br>There are 377 yellow colonies and 365 white colonies in the field of view.</br></p></div>  
 
<br>There are 377 yellow colonies and 365 white colonies in the field of view.</br></p></div>  
  
   <p>We used another α-type yeast named <i>BY4742</i>, which has a plasmid called <i>pRS413</i> with selective marker <i>His</i>. It could express <i>vika recombinase</i> before mating. It mated with a-type <i>Saccharomyces cerevisiae</i> <b><i>PVRVC</i></b>, and then yeast cultured on Sc-His plate. As can be seen from the figure above, the reorganization efficiency is high, which reaches 50.8 percent. This proves that our Mating switcher is fast and efficient.</p>
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   <p>We used another α-type yeast named <i>BY4742</i>, which has a plasmid <i>pRS413</i> with selective marker <i>His</i>. It could express <i>vika recombinase</i> before mating. It mated with a-type <i>Saccharomyces cerevisiae</i> <b><i>PVRVC</i></b>, and then yeast cultured on Sc-His plate. As can be seen from the figure above, the reorganization efficiency is high, which reaches 50.8 percent. This proves that our Mating switcher is fast and efficient.</p>
  
 
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   <p>Apart from mating, we also transformed plasmid <i>pRS416</i> with <i>vika</i> gene into the <b><i>PVRVC</i></b>. The efficiency is up to 91.3 percent in this figure.</p>
 
   <p>Apart from mating, we also transformed plasmid <i>pRS416</i> with <i>vika</i> gene into the <b><i>PVRVC</i></b>. The efficiency is up to 91.3 percent in this figure.</p>
   <p>Compare above two methods, mating and transformation of plasmid, we find that mating is not as efficient as the transformation of the plasmid. After analysis, we came to the conclusions as follows. For the mating method, <i>vika recombinase</i> has stop expressing when <i>BY4742</i> mated with <i><b>PVRVC</b></i> in YPD medium. The previously expressed Vika recombinase may be degraded during the growth. In contrast to this, with another method that the plasmid was transformed into <i><b>PVRVC</b></i> directly, <i>vika recombinase</i> is continuously expressed during cell growth. So the efficiency of the second method is higher than the first method.</p>
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   <p>Compare above two methods, we find that mating is not as efficient as the transformation of the plasmid. After analysis, we came to the conclusions as follows. For the mating method, <i>vika recombinase</i> has stopped expressing when <i>BY4742</i> mated with <i><b>PVRVC</b></i> in YPD medium. The previously expressed Vika recombinase may be degraded during the growth. In contrast to this, with another method that the plasmid was transformed into <i><b>PVRVC</b></i> directly, <i>vika recombinase</i> is continuously expressed during growth. So the efficiency of the second method is higher than the first method.</p>
  
 
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                   <div id="pic_fortysix" style="display:none;"><img src="https://static.igem.org/mediawiki/2017/1/1d/Chenxinyuyuantu5.jpg"><br/>Fig 2-7. Four modified coloniesinserted with promotor-vox-RFP-terminators-vox-crt structure</p></div>  
 
                   <div id="pic_fortysix" style="display:none;"><img src="https://static.igem.org/mediawiki/2017/1/1d/Chenxinyuyuantu5.jpg"><br/>Fig 2-7. Four modified coloniesinserted with promotor-vox-RFP-terminators-vox-crt structure</p></div>  
   <p>We also used other a type <i>Saccharomyces cerevisiae</i> to achieve mating switcher. After changing <i>TEF</i> promotor to <i>TDH3</i> promotor, we repeated the test according to the above two methods. The four strains are all a-type haploid synthetic <i>Saccharomyces cerevisiae</i> named <i><b>TVRVC</b></i> NO.2 (upper left), NO.4 (upper right), NO.11 (lower left) and NO.19 (lower right) respectively. The color appears to be white because <i>β-carotene</i> is not expressed.</p>
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   <p>We also used other <i>Saccharomyces cerevisiae</i> with mating type of a to achieve mating switcher. After changing <i>TEF</i> promotor to <i>TDH3</i> promotor, we repeated the test according to the above two methods. The four strains are all haploid synthetic <i>Saccharomyces cerevisiae</i> with mating type of a named <i><b>TVRVC</b></i> NO.2 (upper left), NO.4 (upper right), NO.11 (lower left) and NO.19 (lower right) respectively. The color appears to be white because <i>β-carotene</i> is not expressed.</p>
  
 
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                   <div id="pic_fortyseven" style="display:none;"><img src="https://static.igem.org/mediawiki/2017/1/17/Chenxinyuyuantu6.jpg"><br/>Fig 2-8. Successful mating colonies</p></div>  
 
                   <div id="pic_fortyseven" style="display:none;"><img src="https://static.igem.org/mediawiki/2017/1/17/Chenxinyuyuantu6.jpg"><br/>Fig 2-8. Successful mating colonies</p></div>  
  
   <p>These are parts of a successful result of mating mentioned above. Two figures one by one correspondence.</p>
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   <p>These are parts of successful results of mating mentioned above.</p>
  
 
   <p>To sum up, the mating switcher can be presented in kinds of yeast with different forms. This proves that our Mating switcher is fast, flexible and efficient.</p>   
 
   <p>To sum up, the mating switcher can be presented in kinds of yeast with different forms. This proves that our Mating switcher is fast, flexible and efficient.</p>   

Revision as of 14:26, 1 November 2017

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Demonstrate