Difference between revisions of "Team:Newcastle/Results"

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High fidelity amplification of the 3 gBlock fragments for assembly of the Fim Switch.  The gBlock-1 amplification is shown in lanes 1+2 (819 bp), gBlock-2 amplification is shown in lanes 3+4 (1148 bp) and the gBlock-3 amplification is shown in lanes 5+6 (939bp).</center>
 
High fidelity amplification of the 3 gBlock fragments for assembly of the Fim Switch.  The gBlock-1 amplification is shown in lanes 1+2 (819 bp), gBlock-2 amplification is shown in lanes 3+4 (1148 bp) and the gBlock-3 amplification is shown in lanes 5+6 (939bp).</center>
 
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The Gibson assembly reaction re-forms the iGEM prefix and suffix regions at the 5’ and 3’ ends of the Fim switch part making the component biobrick compatible while leaving no scarring regions.  Following assembly, the plasmid was transformed into chemically competent  <a href="https://static.igem.org/mediawiki/2017/1/1f/T--Newcastle--ecoli_transformation_bb.pdf">DH5α <i>E. coli</i></a> and colonies patched onto LB Chloramphenicol agar plates.  A single patch showed the correct red colour indicative of the eforRed chromoprotein (see Figure 4). <br/><br/>
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The Gibson assembly reaction re-forms the iGEM prefix and suffix regions at the 5’ and 3’ ends of the Fim switch part making the component biobrick compatible while leaving no scarring regions.  Following assembly, the plasmid was transformed into chemically competent  <a href="https://static.igem.org/mediawiki/2017/1/1f/T--Newcastle--ecoli_transformation_bb.pdf">DH5α <i>E. coli</i></a> and colonies patched onto LB Chloramphenicol agar plates.  A single patch showed the correct red colour indicative of the eforRed chromoprotein (see Figure 4).
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<img class="FIM" style="width:100%" src="https://static.igem.org/mediawiki/2017/6/62/--T--Newcastle--MP--Fim_Red_Plates.jpeg"/>
 
<img class="FIM" style="width:100%" src="https://static.igem.org/mediawiki/2017/6/62/--T--Newcastle--MP--Fim_Red_Plates.jpeg"/>
 
<center><b>Figure 4:</b> <!--- Insert image name between tags. ---->
 
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<center><b>Figure 5: </b> <!--- Insert image name between tags. ---->
 
<center><b>Figure 5: </b> <!--- Insert image name between tags. ---->
 
Restriction digestion of the Fim switch plasmid to confirm successful integration into the iGEM pSB1C3 backbone.  The Fim switch plasmid (Lane 1) was digested with XbaI and PstI with expected band sizes of (2840 bp and 2044 bp).  The pSB1C3 plasmid (Lane 2) containing sfGFP as a control was also digested with XbaI and PstI with expected band sizes of (811 bp and 2044 bp).</center><br/><br/>
 
Restriction digestion of the Fim switch plasmid to confirm successful integration into the iGEM pSB1C3 backbone.  The Fim switch plasmid (Lane 1) was digested with XbaI and PstI with expected band sizes of (2840 bp and 2044 bp).  The pSB1C3 plasmid (Lane 2) containing sfGFP as a control was also digested with XbaI and PstI with expected band sizes of (811 bp and 2044 bp).</center><br/><br/>
The Fim switch insert is 2882 bp in length which makes performing standard short sequencing reads challenging as multiple reactions are required to completely sequence the entire part.  To overcome this we used our in-house Illumina MiSEQ to completely sequence the entire plasmid.  Following quality control analysis the sequence was assembled and shown to be a match to the expected Fim switch part.<br/><br/>
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<div align="left">The Fim switch insert is 2882 bp in length which makes performing standard short sequencing reads challenging as multiple reactions are required to completely sequence the entire part.  To overcome this we used our in-house Illumina MiSEQ to completely sequence the entire plasmid.  Following quality control analysis the sequence was assembled and shown to be a match to the expected Fim switch part.<br/><br/>
 
A problem we found with the Fim switch was that a subset of the colonies were prematurely switching from red to white.  This is likely due to a low level of leaky expression of the <i>fimE</i> gene which then inverts the promoter region upstream of the eforRed gene.  A single white colony was picked and cultured for use in downstream testing as a control as the switching of the promoter should express the <i>rhlI</i> gene and therefor produce the C4 quorum sensing molecule.<br/><br/>
 
A problem we found with the Fim switch was that a subset of the colonies were prematurely switching from red to white.  This is likely due to a low level of leaky expression of the <i>fimE</i> gene which then inverts the promoter region upstream of the eforRed gene.  A single white colony was picked and cultured for use in downstream testing as a control as the switching of the promoter should express the <i>rhlI</i> gene and therefor produce the C4 quorum sensing molecule.<br/><br/>
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Revision as of 20:20, 31 October 2017

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