Difference between revisions of "Team:ShanghaitechChina/Biofilm"

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<p style="text-align:center"><b>Fig 4.</b> Crystal violet assay of CsgA-Histag.</p>
 
<p style="text-align:center"><b>Fig 4.</b> Crystal violet assay of CsgA-Histag.</p>
<h4 ><b>3. Quantum dots fluorescence test: successful binding test of Histag with nanomaterials (CdSeS/CdSe/ZnS core/shell quantum dots)</b></h4>
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<h4 ><b>3. Quantum dots fluorescence test: successful binding test of Histag with nanomaterials (CdSeS/CdSe/ZnS core/shell quantum dots)</b></h4></div>
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<div class="col-lg-7">
 
<b>New characterization of the <a href="http://parts.igem.org/wiki/index.php?title=Part:BBa_K1583003">PART BBa_K1583003</a></b><p></p>
 
<b>New characterization of the <a href="http://parts.igem.org/wiki/index.php?title=Part:BBa_K1583003">PART BBa_K1583003</a></b><p></p>
After confirming that our parts success in biofilms expression, we are going to test the effect of binding between CsgA-Histag mutant and inorganic nanoparticles. We apply suspended QDs solution into M63 medium which has cultured biofilm for 72h. After 1h incubation, we used PBS to mildly wash the well, and the result was consistent with our anticipation: On the left, CsgA-Histag mutant were induced and QDs are attached with biofilms, thus show bright fluorescence. Therefore, we ensure the stable coordinate bonds between CsgA-Histag mutant and QDs can manage to prevent QDs from being taken away by liquid flow. The picture was snapped by ChemiDoc MP,BioRad, false colored.<p></p>
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After confirming that our parts success in biofilms expression, we are going to test the effect of binding between CsgA-Histag mutant and inorganic nanoparticles. We apply suspended QDs solution into M63 medium which has cultured biofilm for 72h. After 1h incubation, we used PBS to mildly wash the well, and the result was consistent with our anticipation: On the left, CsgA-Histag mutant were induced and QDs are attached with biofilms, thus show bright fluorescence. Therefore, we ensure the stable coordinate bonds between CsgA-Histag mutant and QDs can manage to prevent QDs from being taken away by liquid flow. The picture was snapped by ChemiDoc MP,BioRad, false colored.<p></p></div><div class="col-lg-5">
 
<center>
 
<center>
<img src="https://static.igem.org/mediawiki/parts/f/f2/Shanghaitechchina_Histag%2BQDs.png" style="width:40%;">
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<img src="https://static.igem.org/mediawiki/parts/f/f2/Shanghaitechchina_Histag%2BQDs.png" style="width:100%;">
 
</center>
 
</center>
<p style="text-align:center"><b>Fig 5.</b> Fluorescence test of CsgA-His binding with nanomaterials</p>
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<p style="text-align:center"><b>Fig 5.</b> Fluorescence test of CsgA-His binding with nanomaterials</p></div>
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<h4><b>4. TEM: visualization of binding test</b></h4>
 
<h4><b>4. TEM: visualization of binding test</b></h4>
 
Since biofilm nanofibers are thin and inconspicuous against the background under TEM, we harness CdSe QDs binding to highlight the biofilm area. The first image illustrates biofilm areas which are densely covered by QDs after induced for 72h and incubated, compared to the second image which is not incubated with nanoparticles CdSe. The third one is a negative control without inducer, bacteria scattered without forming biofilm<p></p>
 
Since biofilm nanofibers are thin and inconspicuous against the background under TEM, we harness CdSe QDs binding to highlight the biofilm area. The first image illustrates biofilm areas which are densely covered by QDs after induced for 72h and incubated, compared to the second image which is not incubated with nanoparticles CdSe. The third one is a negative control without inducer, bacteria scattered without forming biofilm<p></p>
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<h4><b>1. Congo Red:successful biofilm secretion and expression</b></h4>
 
<h4><b>1. Congo Red:successful biofilm secretion and expression</b></h4>
 
<b class="tc">His-CsgA-SpyCatcher-Histag</b><p></p>
 
<b class="tc">His-CsgA-SpyCatcher-Histag</b><p></p>
After CR dye, the figure indicates that the His-CsgA-SpyCatcher-Histag mutant induced by 0.25 μg/ml of aTc and cultured for 72h at 30℃ successfully secreted a thin-layer biofilm on the plate which are stained to brown-red color by CR, compared to the negative control with no inducer. (Because the ratio between Congo Red dye and Brilliant Blue dye is not in the best state which leads to the unapparent phenomenon through the lens, the brown red biofilm is easy to be identified visually.) This assay also proved that the new and challenging construction of appending a large protein onto CsgA subunits will work accurately and effectively.<p></p>
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<center>
 
<center>
<img src="https://static.igem.org/mediawiki/parts/0/05/Shanghaitechchina_HISCsgASpyCatcher_CR.png" style="width:40%;align:center">
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<img src="https://static.igem.org/mediawiki/parts/0/05/Shanghaitechchina_HISCsgASpyCatcher_CR.png" style="width:100%;align:center">
</center>
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<p style="text-align:center"><b>Fig 8.</b> Congo Red Assay of His-CsgA-SpyCatcher-Histag</p>
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<p style="text-align:center"><b>Fig 8.</b> Congo Red Assay of His-CsgA-SpyCatcher-Histag</p>
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<div class="col-lg-7">After CR dye, the figure indicates that the His-CsgA-SpyCatcher-Histag mutant induced by 0.25 μg/ml of aTc and cultured for 72h at 30℃ successfully secreted a thin-layer biofilm on the plate which are stained to brown-red color by CR, compared to the negative control with no inducer. (Because the ratio between Congo Red dye and Brilliant Blue dye is not in the best state which leads to the unapparent phenomenon through the lens, the brown red biofilm is easy to be identified visually.) This assay also proved that the new and challenging construction of appending a large protein onto CsgA subunits will work accurately and effectively.<p></p>
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</div>
 
<div class="col-lg-8">
 
<div class="col-lg-8">
 
<b class="tc">His-CsgA-SpyCatcher</b><p></p>
 
<b class="tc">His-CsgA-SpyCatcher</b><p></p>
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<div class="col-lg-12">
 
<div class="col-lg-12">
 
<p><b class="bg">His-CsgA-SpyCatcher-Histag</b></p><p></p><p>
 
<p><b class="bg">His-CsgA-SpyCatcher-Histag</b></p><p></p><p>
After applying the same steps as introduced above, the bottom of left well show a large area of bright fluorescence, manifesting His-CsgA-SpyCatcher-Histag mutant secreted biofilms under the control of inducer and Histags on it is not blocked by SpyCatcher protein. What is more, it is firmly attached with inorganic materials (i.e.quantum dots) through the ligand. From this assay, we assure that the SpyCatcher will not impose negative effect on the binding between nanomaterial and biofilm. The picture was snapped by ChemiDoc MP, BioRad, false colored.</p><p></p>
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<center>
 
<center>
<img src="https://static.igem.org/mediawiki/parts/5/56/Shanghaitechchina_hisCsgASpyCatcherHistag%2BQD.png" style="width:40%;">
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<img src="https://static.igem.org/mediawiki/parts/5/56/Shanghaitechchina_hisCsgASpyCatcherHistag%2BQD.png" style="width:100%;">
</center>
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<p style="text-align:center"><b>Fig 10.</b> Quantum Dots Templating Assay on His-CsgA-SpyCatcher-Histag Biofilm.</p>
 
<p style="text-align:center"><b>Fig 10.</b> Quantum Dots Templating Assay on His-CsgA-SpyCatcher-Histag Biofilm.</p>
<b  class="tc">His-CsgA-SpyCatcher</b><p></p>
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</center></div><div class="col-lg-7">
Using the same approach, we also conducted binding assay of His-CsgA-SpyCatcher with QDs to characterize the expression of biofilm and  the visual result shows vividly that His-CsgA-SpyCatcher can bind successfully with the QDs with the existence of inducer aTc, which shows the functional similarity in CsgA-Histag. The picture was snapped by BioRad ChemiDoc MP, false colored.<p></p>
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After applying the same steps as introduced above, the bottom of left well show a large area of bright fluorescence, manifesting His-CsgA-SpyCatcher-Histag mutant secreted biofilms under the control of inducer and Histags on it is not blocked by SpyCatcher protein. What is more, it is firmly attached with inorganic materials (i.e.quantum dots) through the ligand. From this assay, we assure that the SpyCatcher will not impose negative effect on the binding between nanomaterial and biofilm. The picture was snapped by ChemiDoc MP, BioRad, false colored.</p><p></p></div>
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<b  class="tc">His-CsgA-SpyCatcher</b><p></p><div class="col-lg-7">
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Using the same approach, we also conducted binding assay of His-CsgA-SpyCatcher with QDs to characterize the expression of biofilm and  the visual result shows vividly that His-CsgA-SpyCatcher can bind successfully with the QDs with the existence of inducer aTc, which shows the functional similarity in CsgA-Histag. The picture was snapped by BioRad ChemiDoc MP, false colored.<p></p></div>
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<div class="col-lg-5">
 
<center>
 
<center>
<img src="https://static.igem.org/mediawiki/parts/4/45/Shanghaitechchina_hisCsgASpyCatcher%2BQD.png" style="width:40%;">
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<img src="https://static.igem.org/mediawiki/parts/4/45/Shanghaitechchina_hisCsgASpyCatcher%2BQD.png" style="width:100%;">
 
</center>
 
</center>
 
<p style="text-align:center"><b>Fig 11.</b> Quantum dots templating assay on His-CsgA-SpyCatcher biofilm.</p>
 
<p style="text-align:center"><b>Fig 11.</b> Quantum dots templating assay on His-CsgA-SpyCatcher biofilm.</p>
 
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</div>
 
<h4><b>3. TEM: visualization of binding test</b></h4>
 
<h4><b>3. TEM: visualization of binding test</b></h4>
  

Revision as of 21:26, 19 October 2016

igem2016:ShanghaiTech