Difference between revisions of "Team:Uppsala"

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                         <p><b>Figure 2: </b>Flowchart representing the trancsriptomics outline.</p></li><br>
 
                         <p><b>Figure 2: </b>Flowchart representing the trancsriptomics outline.</p></li><br>
  
                     <li><b>-</b> The second approach used a technique called “Phage Display”, which utilizes a random peptide library expressed on the surface of phages. By repeated rounds of affinity screening, only phages with high affinity to the molecule of interest will be selected. Sequencing the genetic information of these phages has allowed us to construct multiple peptide suggestions that may bind to our nematodes’ surface proteins.  This would allow the biosensor to aggregate at the detection sites and create a stronger signal. <br><br>
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                    In our project, phage display has been used in a whole new way. Performing phage display on a whole organism is an unconventional and unpublished procedure. By creating a working protocol for the purpose of finding a specific binder for strongyles we have applied this Nobel-prize winning method in a new way.
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                         <p><b>Figure 3: </b>Flowchart representing the phage display outline.</p>
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                        <h4>Can remove heading if this will bein the middle of the page.</h4></div>
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                            <!-- Here you put your paragraphs -->
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                            <p>The second approach used a technique called “Phage Display”, which utilizes a random peptide library expressed on the surface of phages. By repeated rounds of affinity screening, only phages with high affinity to the molecule of interest will be selected. Sequencing the genetic information of these phages has allowed us to construct multiple peptide suggestions that may bind to our nematodes’ surface proteins.  This would allow the biosensor to aggregate at the detection sites and create a stronger signal. <br><br>
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                            In our project, phage display has been used in a whole new way. Performing phage display on a whole organism is an unconventional and unpublished procedure. By creating a working protocol for the purpose of finding a specific binder for strongyles we have applied this Nobel-prize winning method in a new way.<br><br><b>Figure 3: </b>Flowchart representing the phage display outline.</p>
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                          <!-- Here goes the big image to the right -->
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                          <img src="https://static.igem.org/mediawiki/2018/1/1a/T--Uppsala--phageflowchart.svg">  
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                         </li></ul>
 
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Revision as of 11:29, 16 October 2018




Uppsala iGEM 2018