Team:Bologna/Modeling
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All the biochemical reactions occurring in the testing circuit are listed in Fig. 2, Fig. 3 and Fig. 4 | All the biochemical reactions occurring in the testing circuit are listed in Fig. 2, Fig. 3 and Fig. 4 | ||
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[[Image:Tabella.jpg|center|500px|thumb|Table 1. Legend]] | [[Image:Tabella.jpg|center|500px|thumb|Table 1. Legend]] | ||
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The differential equations describing the above biochemical reaction are obtained appling the law of mass action. | The differential equations describing the above biochemical reaction are obtained appling the law of mass action. | ||
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In the graph above is shown the T-REX system behaviour predicted by the mathematical model. In particular figure 10 shows how the affinity influence the production of GFP. | In the graph above is shown the T-REX system behaviour predicted by the mathematical model. In particular figure 10 shows how the affinity influence the production of GFP. |
Revision as of 03:02, 22 October 2009
HOME | TEAM | PROJECT | SOFTWARE | MODELING | WET LAB | PARTS | HUMAN PRACTICE | JUDGING CRITERIA |
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A. Einstein
Contents |
Introduction
We developed a mathematical model to simulate the response of the testing circuit (Fig. 1).
Mathematical Model
Transcription and translation processes are considered similar to a second order kinetics like an enzymatic reaction: RNA polymerase and ribosome perform enzymes' role, while gene promoter and RBS sequence act as substrates. The binding between enzyme and substrate leads to the formation of a complex, yielding to the final product: mRNA for the polymerase-promoter complex and protein for the ribosome-RBS complex.
Reactions
All the biochemical reactions occurring in the testing circuit are listed in Fig. 2, Fig. 3 and Fig. 4
Symbol definitions are listed in Table 1
Differential Equations
The differential equations describing the above biochemical reaction are obtained appling the law of mass action.
Simulations
To simulate the model we implemented the equation in Simulink (Figure 3 and Figure 4).
T-REX system
In the graph above is shown the T-REX system behaviour predicted by the mathematical model. In particular figure 10 shows how the affinity influence the production of GFP.
Results of the other model simulations are shown in the wet lab parts characterization.