Team:Imperial College London/Modelling/Output/Detailed Description
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|<html><h2>Detailed Description</h2></html> | |<html><h2>Detailed Description</h2></html> | ||
- | + | <html><h3>1. Model based on Law of Mass Action</h3></html> | |
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During a meeting with our advisors, it was noted that our initial models (which had assumed that our system obeyed Michaelis Menten kinetics) were wrong. This is due to the fact that Michaelis Menten kinetics does not apply to our system. | During a meeting with our advisors, it was noted that our initial models (which had assumed that our system obeyed Michaelis Menten kinetics) were wrong. This is due to the fact that Michaelis Menten kinetics does not apply to our system. | ||
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During our literature research, we came across a better output, so we abandoned the idea of using GFP as an output. Instead, we are using catechol. An enzyme, dioxygenase, will be acting on the catechol, which will then result in a coloured output. Catechol will be added to the bacteria manually (i.e. the bacteria will not produce catechol). Hence, in our models dioxygenase will be treated as an output as this enzyme is the only activator of catechol in our system. This means that the change of catechol into its colourful form is dependent on the dioxygenase concentration. | During our literature research, we came across a better output, so we abandoned the idea of using GFP as an output. Instead, we are using catechol. An enzyme, dioxygenase, will be acting on the catechol, which will then result in a coloured output. Catechol will be added to the bacteria manually (i.e. the bacteria will not produce catechol). Hence, in our models dioxygenase will be treated as an output as this enzyme is the only activator of catechol in our system. This means that the change of catechol into its colourful form is dependent on the dioxygenase concentration. | ||
- | + | <html><h3>2. Model preA: Simple production of dioxygenase</h3></html> | |
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This model includes transcription and translation of the dioxygenase. It does not involve any amplification steps. It is our control model against which we will be comparing the results of other models. | This model includes transcription and translation of the dioxygenase. It does not involve any amplification steps. It is our control model against which we will be comparing the results of other models. | ||
- | + | <html><h3>3. Model A: Activation of Dioxygenase by TEV enzyme</h3></html> | |
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- | + | <html><h3>4. Model B: Activation of Dioxygenase by TEV or activated split TEV enzyme</h3></html> | |
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*This model does not include any specific terms for time delays | *This model does not include any specific terms for time delays | ||
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+ | <html><h3>4. Model C: Further improvements</h3></html> | ||
This model has not been implemented because of the conclusions that we reached from Models A and B. | This model has not been implemented because of the conclusions that we reached from Models A and B. |
Revision as of 15:56, 17 October 2010
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