Difference between revisions of "Team:Cologne-Duesseldorf/Eric"

Line 1: Line 1:
 +
{{Template:Cologne-Duesseldorf/header}}
 
{{Template:Cologne-Duesseldorf/css}}
 
{{Template:Cologne-Duesseldorf/css}}
{{Template:Cologne-Duesseldorf/header}}
 
 
<html>
 
<html>
 
<body>
 
<body>
 
<!--https://static.igem.org/mediawiki/2017/5/50/T--Cologne-Duesseldorf--check.jpeg-->
 
<!--https://static.igem.org/mediawiki/2017/5/50/T--Cologne-Duesseldorf--check.jpeg-->
<article>
 
  
<ul>
 
<li>
 
We were able to design and successfully test an orthogonal peroxisomal protein import mechanism for the peroxisome in <i>S. cerevisiae</i>.</li>
 
</ul>
 
 
 
<!---
 
<br>
 
<br>
 
<br>
 
<img src="" style="max-width:100px;" align="left">
 
  
 +
<article>
 
<ul>
 
<ul>
<li>
+
  <li>We were able to design and successfully test an orthogonal peroxisomal protein import mechanism for the peroxisome in <i>S. cerevisiae</i>.</li>
By decorating the peroxisomes with the v-SNARE Snc1 we successfully secreted their entire contents
+
</li>
+
 
</ul>
 
</ul>
 
+
</article>
<br>
+
 
+
<img src="https://static.igem.org/mediawiki/2017/5/50/T--Cologne-Duesseldorf--check.jpeg" style="max-width:100px;" align="left">
+
<br>
+
<br>
+
<br>
+
<ul>
+
<li>
+
With two different sensors we were able to efficiently  measure the pH and the redox potential inside our yeast peroxisomes.
+
</li>
+
</ul>
+
 
+
<br>
+
<br>
+
<br>
+
<img src="https://static.igem.org/mediawiki/2017/5/50/T--Cologne-Duesseldorf--check.jpeg" style="max-width:100px;" align="left">
+
 
+
<ul>
+
<li>
+
Via fluorescence microscopy we verified that the integration of new membrane proteins into the peroxisomal membrane is possible.
+
 
+
<br>
+
<br>
+
<br>
+
<img src="https://static.igem.org/mediawiki/2017/5/50/T--Cologne-Duesseldorf--check.jpeg" style="max-width:100px;" align="left">
+
 
+
<ul>
+
<li>
+
By successfully translocating the required enzymes for the metabolic pathways of nootkatone and violacein into the peroxisome and actually synthesizing the latter, we developed a proof of concept for our toolbox
+
</li>
+
</ul>
+
 
+
<br>
+
<br>
+
<br>
+
<img src="https://static.igem.org/mediawiki/2017/5/50/T--Cologne-Duesseldorf--check.jpeg" style="max-width:100px;" align="left">
+
 
+
<ul>
+
<li>
+
We successfully implemented a way of customizing the size and number of the peroxisomes into our toolbox.
+
</li>
+
</ul>
+
 
+
<br>
+
<br>
+
<br>
+
 
+
<img src="https://static.igem.org/mediawiki/2017/5/50/T--Cologne-Duesseldorf--check.jpeg" style="max-width:100px;" align="left">
+
 
+
<ul>
+
<li>
+
With a high throughput assay we characterized the import efficiency of different PTS2 sequences.
+
</li>
+
</ul>
+
 
+
<br>
+
<br>
+
<br>
+
<img src="https://static.igem.org/mediawiki/2017/5/50/T--Cologne-Duesseldorf--check.jpeg" style="max-width:100px;" align="left">
+
 
+
<ul>
+
<li>
+
To get a better understanding of possible problems and pitfalls of our metabolic engineering concepts we extensively modeled the whole nootkatone pathway and the benefits of it being translocated inside our compartment.
+
</li>
+
</ul>
+
 
+
<br>
+
<br>
+
<br>
+
 
+
<img src="https://static.igem.org/mediawiki/2017/5/50/T--Cologne-Duesseldorf--check.jpeg" style="max-width:100px;" align="left">
+
 
+
<ul>
+
<li>
+
For our planned optogenetic experiments we designed an affordable lightbox which can easily be assembled in a short time.
+
</li>
+
</ul>
+
 
+
 
+
<br>
+
<br>
+
<br>
+
<img src="https://static.igem.org/mediawiki/2017/5/50/T--Cologne-Duesseldorf--check.jpeg" style="max-width:100px;" align="left">
+
 
+
<ul>
+
<li>
+
All our excellent results can be combined into a highly variable compartment toolbox for designing artificial compartments based on the peroxisomes in <i>S. cerevisiae</i> with an enormous range of applications.
+
</li>
+
</ul>
+
 
+
</p>
+
 
+
-->
+
</article>
+
 
</body>
 
</body>
 
</html>
 
</html>
 
{{Template:Cologne-Duesseldorf/footer}}
 
{{Template:Cologne-Duesseldorf/footer}}
 
{{Template:Cologne-Duesseldorf/js}}
 
{{Template:Cologne-Duesseldorf/js}}

Revision as of 19:29, 1 November 2017

  • We were able to design and successfully test an orthogonal peroxisomal protein import mechanism for the peroxisome in S. cerevisiae.