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

From 2013.igem.org

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<p> The resolution of this equation have shown the possibility to stabilize the system.</p>   
<p> The resolution of this equation have shown the possibility to stabilize the system.</p>   
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<p>The analytical solution of this set of equations clearly shows the possibility to stabilize the system thanks to a suitable (constant) light intensity.</p>
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<p>The resolution of the latter equation shows that it is possible to stabilize the system by means of a suitable (constant) light intensity.</p>
<h3>Comparison with experiments</h3>
<h3>Comparison with experiments</h3>
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<p> This first model is very interesting to understand which parameters govern the evolution of the living cell population et to show that conditions exist stabilize it. But this set of equation is insufficient to explain the experiments : </p>
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<p> This first model is very interesting to understand which parameters govern the evolution of the living cell population and to show that conditions exist to stabilize it. But unfortunately this set of equation is insufficient account for the results of the experiments. </p>
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<p> Whereas we observe a lag between the onset of light and the decrease of fluorescence, the first model predicts an immediate decrease. This discrepancy requires another phenomena to be introduced to explain the lag between the stimulus (the light) and the reaction (the decrease of fluorescence and the OD stabilization). Of course this explanation should be borne out by biological facts. </p>
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<p> Whereas we observe a lag between the onset of light and the decrease of fluorescence, the first model predicts an immediate decrease. This discrepancy requires the introduction of other phenomena to be introduced to explain the lag between the stimulus (the light) and the reaction (the decrease of fluorescence and the OD stabilization). Of course this explanation should be borne supported by biological facts. </p>
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<h2 id="MatTime">Maturation Time</h2>
<h2 id="MatTime">Maturation Time</h2>
<h3>The maturation of fluorescent proteins</h3>
<h3>The maturation of fluorescent proteins</h3>
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<p>After traduction and spontaneous polypeptide folding, a fluorescent protein still has to maturate before becoming fluorescent. Fluorescent proteins mature after an oxidation reaction where three amino acids rearrange to form the fluorophore. For GFP, this time is typically 30 minutes [1]. The maturation time of KillerRed is significant for our hands. </p>
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<p>After translation and spontaneous polypeptide folding, a fluorescent protein still has to maturate before becoming fluorescent. Fluorescent proteins mature after an oxidation reaction where three amino acids rearrange to form the fluorophore. For GFP, this time is typically 30 minutes [1]. The maturation time of KillerRed is significant for our experiments. </p>
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<p>[1]<a ref=http://www.chem.ufl.edu/~fanucci/courses/BiochemistryJournalClub/Spring2007/ChromophoreFormationinGFP_biochemistry_1997.pdf">REID Brian G., FLYNN Gregiry C. Chromophore Formation in Green Fluorescent Protein. Biochemistry, 1997, 36, p 6786-6791</a>.</p>
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<h3>Second model </h3>
<h3>Second model </h3>
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<p>Nonetheless, it is impossible to get a good fit between the prediction of the model and the experiment. The maturation step alone doesn't explain why the production of KillerRed is so high two hours after the beginning of the illumination and the decrease of fluorescence is so rapid four hours after the illumination.</p>
<p>Nonetheless, it is impossible to get a good fit between the prediction of the model and the experiment. The maturation step alone doesn't explain why the production of KillerRed is so high two hours after the beginning of the illumination and the decrease of fluorescence is so rapid four hours after the illumination.</p>
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<p>[1]<a ref=http://www.chem.ufl.edu/~fanucci/courses/BiochemistryJournalClub/Spring2007/ChromophoreFormationinGFP_biochemistry_1997.pdf">REID Brian G., FLYNN Gregiry C. Chromophore Formation in Green Fluorescent Protein. Biochemistry, 1997, 36, p 6786-6791</a>.</p>
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Revision as of 23:00, 1 October 2013

Grenoble-EMSE-LSU, iGEM


Grenoble-EMSE-LSU, iGEM

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