Difference between revisions of "Team:Newcastle/Results"

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<p>The 3 experiment sets clearly show that the framework is optimised when a higher concentration of cells expressing the reporter device is present (in the pictures above, 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 previous plate reader experiments.
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<p>The 3 experiment sets clearly show that the framework is optimised when a higher concentration of cells expressing the reporter device is present (Figures 10, 11, 12, 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 previous plate reader experiments.
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. This highlights a crucial advantage of our multicellular, modular framework, which enables each component to be optimised avoiding any extra cloning steps. As each biosensor may be different and require specific designs and optimisation,  easily choosing and changing modules and predicting in silico the bacterial community behavior is essential for the development of new biosensor platforms. </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. This highlights a crucial advantage of our multicellular, modular framework, which enables each component to be optimised avoiding any extra cloning steps. As each biosensor may be different and require specific designs and optimisation,  easily choosing and changing modules and predicting in silico the bacterial community behavior is essential for the development of new biosensor platforms. </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 13:08, 30 October 2017

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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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