Team:Paris
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Based on in-depth studies and experimentally measured parameters we developed predictive models that suggest that this core system is not likely to demonstrate stable oscillations due to damping phenomenon leading to a stationary steady-state. Importantly, our modeling approach provided us with alternative improved designs that should lead in principle to an optimized '''BacteriO'Clock'''. In particular, this is achieved through '''synchronization at the population level''' by adopting a quorum sensing feedback mediated by HSL production that enforces a necessary delay and provides an elegant cellular synchronization mechanism : | Based on in-depth studies and experimentally measured parameters we developed predictive models that suggest that this core system is not likely to demonstrate stable oscillations due to damping phenomenon leading to a stationary steady-state. Importantly, our modeling approach provided us with alternative improved designs that should lead in principle to an optimized '''BacteriO'Clock'''. In particular, this is achieved through '''synchronization at the population level''' by adopting a quorum sensing feedback mediated by HSL production that enforces a necessary delay and provides an elegant cellular synchronization mechanism : | ||
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<center><html><a href="https://2008.igem.org/Team:Paris/Project" alt="Project" title="Learn more about our project !"><img width=350px src="https://static.igem.org/mediawiki/2008/5/58/Unimo.png" /></a></html></center> | <center><html><a href="https://2008.igem.org/Team:Paris/Project" alt="Project" title="Learn more about our project !"><img width=350px src="https://static.igem.org/mediawiki/2008/5/58/Unimo.png" /></a></html></center> | ||
Revision as of 07:57, 30 October 2008
The BacteriO'Clock
by the Paris iGEM Team
We are extremely grateful to the organizations that support our project:
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