Difference between revisions of "Team:NUS Singapore/Overview"

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         <h2>Methodology</h2>
 
         <h2>Methodology</h2>
<p>Methodology describes the modelling process we use to develop each of our models. Here you can find information about the equations and modelling workflow we use.</p>
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<p>Methodology describes the process we use to develop each of our models. Here you can find information about the modelling principles, our equations and modelling workflow.</p>
 
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       <h2>Kill switch for probiotics</h2>
 
       <h2>Kill switch for probiotics</h2>
<p>The kill switch for probiotics is a successful proof of concept that demonstrates how our E2 chassis and modelling workflow can be used to make the engineering of customised killswitches for engineered probiotics easier. Using this model, our experimenters successfuly constructed the phosphate-temperature cascaded system with GFP reporter <a href="http://parts.igem.org/Part:BBa_K2447015">(BBa_K2447015)</a>.  Here you can find the modelling workflow and modelling results that proves our design works!</p>
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<p>The kill switch for probiotics is a successful proof of concept that demonstrates how our E2 chassis and modelling workflow make the engineering of customised killswitches for engineered probiotics easier. Using this model, our experimenters successfuly constructed the phosphate-temperature cascaded system with GFP reporter <a href="http://parts.igem.org/Part:BBa_K2447015">(BBa_K2447015)</a>.  Here you can find the modelling workflow and modelling results that proves our design works!</p>
 
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         <h2>Kill switch for BeeT</h2>
 
         <h2>Kill switch for BeeT</h2>
<p>The kill switch for BeeT employs our E2 Chassis and automated circuit design included in our modelling workflow, to Wageningen iGEM2016's biocontainment system. We make improvements to their kill switch by increasing the kill switch's specificity, increasing  efficiency, and employing a more effective killing mechanism using our chassis.</p>
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<p>The kill switch for BeeT uses our E2 chassis and the automated circuit design included in our modelling workflow, to Wageningen iGEM2016's biocontainment system. We make improvements to their kill switch by increasing the kill switch's specificity, increasing  efficiency, and employing a more effective killing mechanism using our chassis.</p>
 
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Revision as of 12:32, 31 October 2017

Overview

Methodology

Methodology describes the process we use to develop each of our models. Here you can find information about the modelling principles, our equations and modelling workflow.

Kill switch for probiotics

The kill switch for probiotics is a successful proof of concept that demonstrates how our E2 chassis and modelling workflow make the engineering of customised killswitches for engineered probiotics easier. Using this model, our experimenters successfuly constructed the phosphate-temperature cascaded system with GFP reporter (BBa_K2447015). Here you can find the modelling workflow and modelling results that proves our design works!

Kill switch for BeeT

The kill switch for BeeT uses our E2 chassis and the automated circuit design included in our modelling workflow, to Wageningen iGEM2016's biocontainment system. We make improvements to their kill switch by increasing the kill switch's specificity, increasing efficiency, and employing a more effective killing mechanism using our chassis.