Difference between revisions of "Team:Newcastle/Results"

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Results from the <a href="https://2017.igem.org/Team:Newcastle/Model#sim">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 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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<p> In order to check the performance of the Sensynova device in terms of modularity, cultures of IPTG detector, processor unit and 3 different reporter modules carrying 2 chromoproteins (<a href="http://parts.igem.org/Part:BBa_K2205016">BBa_K2205016</a>, <a href="http://parts.igem.org/Part:BBa_K2205018">BBa_K2205018</a>)and sfGFP(<a href="http://parts.igem.org/Part:BBa_K2205015">BBa_K2205015</a>) were inoculated and grown overnight in LB+chloramphenicol(12,5ng/ul). The day after the cultures were diluted at OD600: 0,1 and mixed together to obtain co-cultures with ratio 1:1:1 and 1:1:13. Some samples were supplemented with 1mM IPTG to induce the expression of quorum sensing molecules and eventually achieve the chromoproteins visualisation (Figures 10, 11, 12).  
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<p> In order to check the performance of the Sensynova device in terms of modularity, cultures of IPTG detector, processor unit and 3 different reporter modules carrying 2 chromoproteins (Chromoproteins link)(<a href="http://parts.igem.org/Part:BBa_K2205016">BBa_K2205016</a>, <a href="http://parts.igem.org/Part:BBa_K2205018">BBa_K2205018</a>)and sfGFP(<a href="http://parts.igem.org/Part:BBa_K2205015">BBa_K2205015</a>) were inoculated and grown overnight in LB+chloramphenicol(12,5ng/ul). The day after the cultures were diluted at OD600: 0,1 and mixed together to obtain co-cultures with ratio 1:1:1 and 1:1:13. Some samples were supplemented with 1mM IPTG to induce the expression of quorum sensing molecules and eventually achieve the chromoproteins visualisation (Figures 10, 11, 12).  
  
  
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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.
 
<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.
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>)with the 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 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>
 
           <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 11:18, 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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