Team:Grenoble-EMSE-LSU/Project/Modelling/Density

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<p>In our<a href="https://2013.igem.org/Team:Grenoble-EMSE-LSU/Project/Modelling/Building">initial model</a> we showed that it was theoretically possible to stabilize the amount of living bacteria with a <a href="https://2013.igem.org/Team:Grenoble-EMSE-LSU/Project/Modelling/Building#AnaSol">constant light intensity</a>. With the complete model, this still holds true, as shown by the following simulations. In addition, numerical  simulation shows that the light intensity is a very sensitive parameter. Below are displayed three simulated 16 hours long kinetics, for a cell suspension illuminated at a power of $1UL$ for the first (red), $0.327UL$ for the second (blue) and $0.25UL$ for the last one (green).</p>
<p>In our<a href="https://2013.igem.org/Team:Grenoble-EMSE-LSU/Project/Modelling/Building">initial model</a> we showed that it was theoretically possible to stabilize the amount of living bacteria with a <a href="https://2013.igem.org/Team:Grenoble-EMSE-LSU/Project/Modelling/Building#AnaSol">constant light intensity</a>. With the complete model, this still holds true, as shown by the following simulations. In addition, numerical  simulation shows that the light intensity is a very sensitive parameter. Below are displayed three simulated 16 hours long kinetics, for a cell suspension illuminated at a power of $1UL$ for the first (red), $0.327UL$ for the second (blue) and $0.25UL$ for the last one (green).</p>
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<p>These simulations were conducted with the following values of the parameters: </p>
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<p> $r=8,3.10^{-3} min^{-1}$, or $R=83 min$ (time of division)</p>
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<p> $a=130 UF.OD^{-1}.min^{-1}$</p>
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<p> $b=0,9.10^{-2}UF.UL^{-1}.min^{-1}$</p>
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<p> $k=0,9.10^{-7}OD.UF^{-1}.UL^{-1}.min^{-1}$</p>
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<p> $l=0.087$</p>
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<p> $m=6,3.10^{-3} min^{-1}$, or $M=110 min$ (half-time of maturation)</p>
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<p> And the initial contitions were:</p>
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<p> $OD_{600}=0.015%</p>
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<p> $fluorescence=0UF$</p>
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Revision as of 12:43, 3 October 2013

Grenoble-EMSE-LSU, iGEM


Grenoble-EMSE-LSU, iGEM

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