Team:Michigan/Modeling
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- | Mathematical models are very important in the design of an iGEM project. The Michigan modeling team is composed of [[User:Evolver|Josh]], [[User:Kevijose|Kevin]], and [[User:Jejihong|Jennifer]]. We are currently researching different models that have been previously done that can help us in our own modeling endeavors. To construct our models, we have taken advantage of MATLAB's Simbiology toolset. | + | Mathematical models are very important in the design of an iGEM project. The Michigan modeling team is composed of [[User:Evolver|Josh]], [[User:Kevijose|Kevin]], [[User:htwong|Candy]] and [[User:Jejihong|Jennifer]]. We are currently researching different models that have been previously done that can help us in our own modeling endeavors. To construct our models, we have taken advantage of MATLAB's Simbiology toolset. |
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+ | There are several components to a good mathematical model. These include assumptions, parameters, and equations. | ||
==Pili== | ==Pili== | ||
[[Image:Michigan-Floc_model.png|600px|left]] | [[Image:Michigan-Floc_model.png|600px|left]] | ||
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We have decided to model the growth of a biofilm using pili. By modeling the flocculation of the algae, we hope to be able to predict how our reactions will proceed and determine quantities such as the optimal initial concentration of E. coli. | We have decided to model the growth of a biofilm using pili. By modeling the flocculation of the algae, we hope to be able to predict how our reactions will proceed and determine quantities such as the optimal initial concentration of E. coli. | ||
- | <br | + | <u>Assumptions</u> |
+ | <br> | ||
+ | '''There is no growth or degradation of cells and algae.''' | ||
+ | *I made this assumption to simplify the model. | ||
+ | '''Floc formation only involves two particles.''' | ||
+ | '''Collision efficiency is perfect.''' | ||
+ | *This assumption greatly simplifies the model. | ||
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+ | <u>Parameters</u> | ||
+ | <br> | ||
+ | '''All rate constants set to 0.1.''' | ||
+ | *This is obviously unrealistic, but with experimental data, we can refine the numbers. | ||
+ | '''Initial quantities of E. coli and algae are 1 mol.''' | ||
+ | *We can perform assays to determine the ideal starting conditions. | ||
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[[Image:Michigan-Pili_Regulation.png|400px|left]] | [[Image:Michigan-Pili_Regulation.png|400px|left]] | ||
The pili neural network has been characterized in several papers [1][2]. Essentially, the two recombinases FimB and FimE control an invertible DNA element that acts as a switch, known as FimS. When FimS is in the "on" position, the cell becomes fimbriated. It has been previously determined that the level of piliation depends on the ratio [FimE]/[FimB]. The goal of the modeling team is to determine the optimal ratio to promote flocculation. | The pili neural network has been characterized in several papers [1][2]. Essentially, the two recombinases FimB and FimE control an invertible DNA element that acts as a switch, known as FimS. When FimS is in the "on" position, the cell becomes fimbriated. It has been previously determined that the level of piliation depends on the ratio [FimE]/[FimB]. The goal of the modeling team is to determine the optimal ratio to promote flocculation. |
Revision as of 19:24, 17 August 2010