Difference between revisions of "Team:Newcastle/Results"

Line 1,254: Line 1,254:
 
<img src="https://static.igem.org/mediawiki/parts/6/63/Framework_generic.jpg" class="img-fluid rounded mx-auto d-block" style="max-width: 60%" alt="">
 
<img src="https://static.igem.org/mediawiki/parts/6/63/Framework_generic.jpg" class="img-fluid rounded mx-auto d-block" style="max-width: 60%" alt="">
 
<p>
 
<p>
<center><b>Figure 2:</b> Modular and multicellular Sensynova framework design.</center>
+
<center><b>Figure 2:</b> <a href="http://sbolstandard.org/visual#post-780">SBOL Visual</a> for the modular and multicellular Sensynova framework design.</center>
 
</br></p>
 
</br></p>
 
         <p> The splitting of biosensor components into separate cells may have additional advantages besides ease of variant production. Goni-Moreno <i>et al</i>. (2011) have previously suggested that the use of synthetic quorum sensing circuits enables each cell to be considered an independent logic gate, which may rectify the “fuzzy logic” seen in some biosensors, where stochastic cellular processes may produce false positive results. Quorum sensing has also been previously used to synchronise gene expressions, leading to reduced variability within a population (Danino <i>et al</i>., 2010).</p>
 
         <p> The splitting of biosensor components into separate cells may have additional advantages besides ease of variant production. Goni-Moreno <i>et al</i>. (2011) have previously suggested that the use of synthetic quorum sensing circuits enables each cell to be considered an independent logic gate, which may rectify the “fuzzy logic” seen in some biosensors, where stochastic cellular processes may produce false positive results. Quorum sensing has also been previously used to synchronise gene expressions, leading to reduced variability within a population (Danino <i>et al</i>., 2010).</p>
Line 1,289: Line 1,289:
 
<img src="https://static.igem.org/mediawiki/2017/5/5c/Iptg_framework.jpg" class="img-fluid rounded mx-auto d-block" style="max-width: 60%" alt="">
 
<img src="https://static.igem.org/mediawiki/2017/5/5c/Iptg_framework.jpg" class="img-fluid rounded mx-auto d-block" style="max-width: 60%" alt="">
 
<p>
 
<p>
<center><b>Figure 4:</b> Sensynova framework design used for sensing IPTG. </center></p>
+
<center><b>Figure 4:</b> <a href="http://sbolstandard.org/visual#post-780">SBOL Visual</a> for the Sensynova framework design used for sensing IPTG. </center></p>
  
 
           </br>
 
           </br>

Revision as of 21:20, 31 October 2017

spacefill

Our Experimental Results



Below is a diagram of our Sensynova Framework. Clicking on each part of the framework (e.g. detector modules) links to the relevant results.

Alternatively, at the bottom of this page are tabs which will show you results for every part of the project



Framework

Framework Chassis

Biochemical Adaptor

Target

Detector Modules

Multicellular Framework Testing

C12 HSL: Connector 1

Processor Modules

Framework in Cell Free Protein Synthesis Systems

C4 HSL: Connector 2

Reporter Modules



Looking for Interlab Study
related results? Click below!