Difference between revisions of "Team:Newcastle/Results"

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<b> Framework test.</b> The co-culture of the 3 cell types was inoculated at ratio 1:1:1, growth and fluorescence were monitored after induction with IPTG 1mM. The plot shows no significant increasing fluorescence in the induced samples (Figure 8).</p>
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<b> Framework test.</b> The co-culture of the 3 cell types was inoculated at ratio 1:1:1 (detectors:processors:reporters), growth and fluorescence were monitored after induction with IPTG 1mM. The plot shows no significant increasing fluorescence in the induced samples (Figure 8).</p>
 
<img src="https://static.igem.org/mediawiki/parts/f/f2/T--Newcastle--BB_framework_framework_green.jpg" class="img-fluid rounded mx-auto d-block" style="max-width: 60%" alt="">
 
<img src="https://static.igem.org/mediawiki/parts/f/f2/T--Newcastle--BB_framework_framework_green.jpg" class="img-fluid rounded mx-auto d-block" style="max-width: 60%" alt="">
  
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Results from the <a href="https://2017.igem.org/Team:Newcastle/Model#sim">multicellular modelling</a> predicted that the 1:1:1 ratio is not the optimal combination for the Sensynova device to work. It is in fact suggested to adopt a higher concentration of the reporter culture compare with the detector and processor. Thus, the framework test was repeated with the 1:1:13 cultures combination. The experiment results, shown in the picture below, confirm the modelling data. There is a consistent discrepancy between IPTG induced and non-induced samples in the 1:1:13 co-cultures, in comparison with the 1:1:1 co-cultures which don't show any difference in presence or absence of IPTG (figure9).</p>
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Results from the <a href="https://2017.igem.org/Team:Newcastle/Model#sim">multicellular modelling</a> predicted that the traditionally used 1:1:1 ratio is not the optimal combination for the Sensynova device to work. It is in fact suggested to adopt a higher concentration of the reporter culture compare with the detector and processor. Thus, the framework test was repeated incorporating our in silico simulation data and combining the 3 cell types in ratio 1:1:13 (detectors:processors:reporters). The experiment results, shown in the picture below, confirm the modelling data. There is a consistent discrepancy between IPTG induced and non-induced samples in the 1:1:13 co-cultures, in comparison with the 1:1:1 co-cultures which don't show any difference in presence or absence of IPTG (figure9).</p>
 
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<img src="https://static.igem.org/mediawiki/2017/9/9e/Ratios.jpg" class="img-fluid rounded mx-auto d-block" style="max-width: 60%" alt="">
 
<img src="https://static.igem.org/mediawiki/2017/9/9e/Ratios.jpg" class="img-fluid rounded mx-auto d-block" style="max-width: 60%" alt="">
  
 
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<p class="legend"><strong><b>Figure 9:</b></strong> Framework (<a href="http://parts.igem.org/Part:BBa_K2205009">BBa_K2205009</a> , <a href="http://parts.igem.org/Part:BBa_K2205012">BBa_K2205012</a> , <a href="http://parts.igem.org/Part:BBa_K2205015">BBa_K2205015</a> )  test with a co-culture in ration 1:1:13 in response of IPTG induction.
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<p class="legend"><strong><b>Figure 9:</b></strong> Framework (<a href="http://parts.igem.org/Part:BBa_K2205009">BBa_K2205009</a> , <a href="http://parts.igem.org/Part:BBa_K2205012">BBa_K2205012</a> , <a href="http://parts.igem.org/Part:BBa_K2205015">BBa_K2205015</a> )  test with a co-culture in ratio 1:1:13 in response of IPTG induction.
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The experimental data validate the model prediction showing that the system worked most optimally when the reporter cells were in excess of both the detector and processor cells. One of the reasons that this configuration was the best may be because of signal amplification at each of the quorum sensing communication stages. The quorum sensing mechanism used here is the acyl homoserine lactone (AHL) system in gram negative bacteria. This system works by one cell producing a quorum sensing molecule which can diffuse out through its membrane. Once the extracellular space reaches a certain threshold concentration of AHL molecule, the AHL will begin to diffuse into other cells in the community. If the cell the AHL molecule enters has the appropriate transcription factor present (e.g. LasR for the C12 AHL), then transcription of a gene under the control of the pLas promoter can occur. Therefore, if background expression of the AHL is high enough to reach above the threshold level, then expression of the next quorum sensing molecule in another cell (in this case C4 AHL) will occur. By reducing the amount of detector and processor cells present in the system, the background expression levels of C12 and C4 will be lower, and hence expression of sfGFP by the reporter cell will be lower.
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<b> Qualitative test with chromoproteins expression. </b>
 
<b> Qualitative test with chromoproteins expression. </b>
  
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<p>The 3 experiments sets clearly show that the framework is optimised when a higher concentration of cells expressing the reporter device is present (in the pictures, samples labelled 1:1:13). This can be consider as a further validation of our <a href="https://2017.igem.org/Team:Newcastle/Model#sim">simbiotics model</a> and plate reader experiments.
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<p>The 3 experiments sets clearly show that the framework is optimised when a higher concentration of cells expressing the reporter device is present (in the pictures, samples labelled 1:1:13). This can be considered as a further validation of our fine-tuning approach using the <a href="https://2017.igem.org/Team:Newcastle/Model#sim">simbiotics model</a> and the plate reader experiments.
Although a background signal is visible in the systems carrying the pink (<a href="http://parts.igem.org/Part:BBa_K2205018">BBa_K2205018</a>)and the sfGPF(<a href="http://parts.igem.org/Part:BBa_K2205015">BBa_K2205015</a>) reporters, the blue reporter (<a href="http://parts.igem.org/Part:BBa_K2205016">BBa_K2205016</a>)due to its lowest background level, constitutes the most suitable reporter module for the Sensynova framework customised as IPTG biosensor.</p>
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Although a background signal is visible in the systems expressing the pink (<a href="http://parts.igem.org/Part:BBa_K2205018">BBa_K2205018</a>)and the sfGPF(<a href="http://parts.igem.org/Part:BBa_K2205015">BBa_K2205015</a>) reporters, the blue reporter (<a href="http://parts.igem.org/Part:BBa_K2205016">BBa_K2205016</a>)due to its lowest background level, constitutes the most suitable reporter module for the Sensynova platform customised as IPTG biosensor.</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>
 
           <p>In conclusion, through a comprehensive systematic review a design pattern of four components was identified for synthetic biology biosensors. The components are detection and output devices, with optional processing and adaptor units. Based on this design pattern, a multicellular biosensor development platform was designed in which biosensor components were split between cells and linked by intercellular connectors. ADD CONCLUSION OF LAB WORK
 
           <p>In conclusion, through a comprehensive systematic review a design pattern of four components was identified for synthetic biology biosensors. The components are detection and output devices, with optional processing and adaptor units. Based on this design pattern, a multicellular biosensor development platform was designed in which biosensor components were split between cells and linked by intercellular connectors. ADD CONCLUSION OF LAB WORK

Revision as of 12:16, 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



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