Difference between revisions of "Team:Tianjin/Demonstrate"

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                   <div id="pic_fortyone" style="display:none;"><img src="https://static.igem.org/mediawiki/2017/b/b9/Tianjin-1-Red_fluorescent_protein_expression_vector_construction_flow_chart_yuan..jpg"><p style="font-size:15px;text-align:center"><br/>Fig 2-1. Red fluorescent protein expression vector construction flow chart.</p></div>  
 
                   <div id="pic_fortyone" style="display:none;"><img src="https://static.igem.org/mediawiki/2017/b/b9/Tianjin-1-Red_fluorescent_protein_expression_vector_construction_flow_chart_yuan..jpg"><p style="font-size:15px;text-align:center"><br/>Fig 2-1. Red fluorescent protein expression vector construction flow chart.</p></div>  
  
   <p>Then we first inserted BBa_K2407306 to the <i>Synthetic chromosome Ⅴ</i> of <i>Saccharomyces cerevisiae</i> . Through the screening of <i>SC-Ura</i>  solid medium and PCR experiments, we obtained the required strains called <b><i>PVUVC</i></b>. Second, we integrated the second composite part into this chromosome through homologous recombination, allowing the <i>RFP</i> gene to replace the <i>Ura3</i> gene. The <i>5-FOA</i> solid medium and PCR experiments were used to screen correct colony PVRVC. The conversion of the last fragment refers to the previous method. This process is graphically displayed on the above figure.</p>
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   <p>Then we first inserted BBa_K2407306 to the <i>Synthetic chromosome Ⅴ</i> of <i>Saccharomyces cerevisiae</i> . Through the screening of <i>SC-Ura</i>  solid medium and PCR experiments, we obtained the required strains called <b><i>PVUVC</i></b>. Second, we integrated the second composite part into this chromosome through homologous recombination, allowing the <i>RFP</i> gene to replace the <i>Ura3</i> gene. The <i>5-FOA</i> solid medium and PCR experiments were used to screen correct colony <b><i>PVRVC</i></b>. The conversion of the last fragment refers to the previous method. This process is graphically displayed on the above figure.</p>
 
   <p>To achieve mating, another mating type of wild type haploid yeast <i>Saccharomyces cerevisiae BY4742</i> was used for modification. By digestion and ligation, we construct vika gene on plasmid <i>pRS416</i> which contains a selective marker <i>Ura3</i>, and plasmid <i>pRS413</i> which contains a selective marker <i>His</i>. Then we introduced those two different plasmids into <I>BY4742</I> respectively.</p>
 
   <p>To achieve mating, another mating type of wild type haploid yeast <i>Saccharomyces cerevisiae BY4742</i> was used for modification. By digestion and ligation, we construct vika gene on plasmid <i>pRS416</i> which contains a selective marker <i>Ura3</i>, and plasmid <i>pRS413</i> which contains a selective marker <i>His</i>. Then we introduced those two different plasmids into <I>BY4742</I> respectively.</p>
 
   <h4>Results of Characterization of Mating Switcher</h4>
 
   <h4>Results of Characterization of Mating Switcher</h4>
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   <h5>2) Verification of RFP in the TVRVC</h5>
 
   <h5>2) Verification of RFP in the TVRVC</h5>
 
<hr>
 
<hr>
   <p>The main characterization method of verification of <i>RFP</i> in the TVRVC 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 PVRVC 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.All the experiment including <b><i>PVRVC</i></b> regulation system use this assay method.</p>
  
 
   <div id="threepic1">
 
   <div id="threepic1">
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                     </div>
 
                     </div>
 
                    
 
                    
                   <div id="pic_fortythree" style="display:none;"><img src="https://static.igem.org/mediawiki/2017/0/0a/Chenxiyuyuantu2.jpg"><p style="font-size:15px;text-align:center"><br/>Fig 2-4. Three modified colonies and one resulting colony.</p></div>
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                   <div id="pic_fortythree" style="display:none;"><img src="https://static.igem.org/mediawiki/2017/0/0a/Chenxiyuyuantu2.jpg"><p style="font-size:15px;text-align:center"><br/>Fig 2-4. Three modified colonies and one resulting colony.</p>
 
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   <p>The upper left corner of the bacteria is synthetic <i>Saccharomyces cerevisiae</i>, we integrated modified fragment into its <i>synthetic chromosome V</i>. (PVUVC) The upper right corner is also synthetic <i>Saccharomyces cerevisiae</i>. (PVRVC) 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.</p></div>  
 
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   <p>The upper left corner of the bacteria is synthetic <i>Saccharomyces cerevisiae</i>, we integrated modified fragment into its <i>synthetic chromosome V</i>. (PVUVC) The upper right corner is also synthetic <i>Saccharomyces cerevisiae</i>. (PVRVC) 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.</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>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>
 
   <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>

Revision as of 15:19, 31 October 2017

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Demonstrate