Difference between revisions of "Team:Newcastle/Results"

Line 479: Line 479:
 
</p>
 
</p>
 
            
 
            
           <p>This part consists of the promoter of the  <i> E. coli</i>  JM109 chromosomal arsenic detoxification operon (ars operon), including the ArsR repressor binding site and the arsR gene encoding the arsR repressor protein, together with its ribosome binding site. Addition of any other genes to the 3' end of this part will result in their expression being dependent on the presence of sodium arsenate or sodium arsenite. Arsenite or arsenite anion binds to the repressor protein ArsR, resulting in inability to repress the promoter. Based on our experiments, a concentration of 1 micromolar sodium arsenate in LB is sufficient for essentially full expression, though this will vary according to conditions.</p>
+
           <p>This part consists of the promoter of the  <i> E. coli</i>  JM109 chromosomal arsenic detoxification operon (ars operon), including the ArsR repressor binding site and the <i>arsR</i> gene encoding the arsR repressor protein, together with its ribosome binding site. Addition of any other genes to the 3' end of this part will result in their expression being dependent on the presence of sodium arsenate or sodium arsenite. Arsenite or arsenite anion binds to the repressor protein ArsR, resulting in inability to repress the promoter. Based on our experiments, a concentration of 1 micromolar sodium arsenate in LB is sufficient for essentially full expression, though this will vary according to conditions.</p>
  
 
           <h2 style="font-family: Rubik; text-align: left; margin-top: 1%"> Design Stage </h2>
 
           <h2 style="font-family: Rubik; text-align: left; margin-top: 1%"> Design Stage </h2>
Line 492: Line 492:
 
<b>Figure 3:</b> The expression vector pSB1C3 with <a href="http://parts.igem.org/Part:BBa_K2205022">BBa_K2205022</a>
 
<b>Figure 3:</b> The expression vector pSB1C3 with <a href="http://parts.igem.org/Part:BBa_K2205022">BBa_K2205022</a>
 
           </p>  
 
           </p>  
           <p>In order to introduce the Arsenic sensing part in the Sensinova framework, the part <a href="http://parts.igem.org/Part:BBa_K2205008">BBa_K2205008</a> containing the RBS B0034, the lasI coding sequence and the double terminator B0015 has been included in the design. The new part <a href="http://parts.igem.org/Part:BBa_K2205022">BBa_K2205022</a> presents biobrickable suffix and prefix and has been designed to have specific overhangs to be assembled in the plasmid pSB1C3 by Gibson assembly method. The part has been obtained by gBlock synthesis from IDT and subsequently assembled into the plasmid using NEB HI-Fi kit. The assembly mix was heat-shock transformed in competent DH5α and plated on Chloramphenicol LB plates. The colonies were tested through colony PCR and confirmed by sequencing.</p>
+
         
 +
         
 +
           <h2 style="font-family: Rubik; text-align: left; margin-top: 1%"> Implementation </h2>
 +
          <p> Text goes here.</p>
 +
<p>In order to introduce the Arsenic sensing part in the Sensinova framework, the part <a href="http://parts.igem.org/Part:BBa_K2205008">BBa_K2205008</a> containing the RBS B0034, the <i>lasI</i> coding sequence and the double terminator B0015 has been included in the design. The new part <a href="http://parts.igem.org/Part:BBa_K2205022">BBa_K2205022</a> presents biobrickable suffix and prefix and has been designed to have specific overhangs to be assembled in the plasmid pSB1C3 by Gibson assembly method. The part has been obtained by gBlock synthesis from IDT and subsequently assembled into the plasmid using NEB HI-Fi kit. The assembly mix was heat-shock transformed in competent DH5α and plated on Chloramphenicol LB plates. The colonies were tested through colony PCR and confirmed by sequencing.</p>
  
 
           <img src="https://static.igem.org/mediawiki/2017/7/70/Vave4.png" class="img-fluid border border-dark rounded" style="margin: 2%; max-width: 70%">
 
           <img src="https://static.igem.org/mediawiki/2017/7/70/Vave4.png" class="img-fluid border border-dark rounded" style="margin: 2%; max-width: 70%">
Line 499: Line 503:
 
         <b>Figure 4:</b> On the gel, colony PCR samples confirming the successful assembly of <a href="http://parts.igem.org/Part:BBa_K2205022">BBa_K2205022</a> into pSB1C3.
 
         <b>Figure 4:</b> On the gel, colony PCR samples confirming the successful assembly of <a href="http://parts.igem.org/Part:BBa_K2205022">BBa_K2205022</a> into pSB1C3.
 
</p>
 
</p>
           <p> In the presence of arsenic, the repression will be avoided by binding the repressor ArsR This bound allows the transcription of the downstream gene, lasI. This gene encodes for the quorum sensing molecule C12, which acts as a connector to the processing cell.</p>
+
           <p> In the presence of arsenic, the repression will be avoided by binding the repressor ArsR This bound allows the transcription of the downstream gene, <i>lasI</i>. This gene encodes for the quorum sensing molecule C12, which acts as a connector to the processing cell.</p>
         
+
          <h2 style="font-family: Rubik; text-align: left; margin-top: 1%"> Implementation </h2>
+
          <p> Text goes here.</p>
+
 
+
 
           <h2 style="font-family: Rubik; text-align: left; margin-top: 1%"> Characterisation </h2>
 
           <h2 style="font-family: Rubik; text-align: left; margin-top: 1%"> Characterisation </h2>
           <p></p>
+
           <p><b>Qualitative assay.</b></p>
  
 
           <h2 style="font-family: Rubik; text-align: left; margin-top: 1%"> Conclusions and Future Work </h2>
 
           <h2 style="font-family: Rubik; text-align: left; margin-top: 1%"> Conclusions and Future Work </h2>
Line 531: Line 531:
 
           We chose to use this system as a variant to the IPTG detector module present in the Sensynova platform in order to fulfil the requirement of collaborating with another iGEM team.
 
           We chose to use this system as a variant to the IPTG detector module present in the Sensynova platform in order to fulfil the requirement of collaborating with another iGEM team.
 
           </br></br>
 
           </br></br>
           The image below, provided to us by the Evry Paris-Saclay 2017 team, details the psicose biosensor design. It features the pLac derivative promoter pTAC (BBa_K180000), a RBS (BBa_B0034), the PsiR coding sequence, the terminator (BBa_B0015), the synthetic promoter pPsitac, a RBS (BBa_B0034), a mCherry coding sequence and finally the terminator (BBa_B0015) flanked by the iGEM prefix and suffix.</p>
+
           The image below, provided to us by the Evry Paris-Saclay 2017 team, details the psicose biosensor design. It features the pLac derivative promoter pTAC (BBa_K180000), a RBS (BBa_B0034), the <i>PsiR </i>coding sequence, the terminator (BBa_B0015), the synthetic promoter pPsitac, a RBS (BBa_B0034), a <i>mCherry</i> coding sequence and finally the terminator (BBa_B0015) flanked by the iGEM prefix and suffix.</p>
  
 
           <img src="https://static.igem.org/mediawiki/2017/1/1b/T--Newcastle--Lais--Evry--Biosensor.png" class="img-fluid border border-dark rounded" style="margin: 2%">
 
           <img src="https://static.igem.org/mediawiki/2017/1/1b/T--Newcastle--Lais--Evry--Biosensor.png" class="img-fluid border border-dark rounded" style="margin: 2%">

Revision as of 15:44, 30 October 2017

spacefill

Our Experimental Results

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!