Team:PKU Beijing/Modeling/ODE
From 2009.igem.org
(Difference between revisions)
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*'''Transcription''' | *'''Transcription''' | ||
- | The equation used to describe the transcription process is Hill | + | The equation used to describe the transcription process is Hill equations, which is well-known in biomodeling. |
<math>\frac{\mathrm{d}[mRNA]}{\mathrm{d}t}=k(\frac{(\frac{[A]}{K})^n}{1+(\frac{[A]}{K})^n})</math> | <math>\frac{\mathrm{d}[mRNA]}{\mathrm{d}t}=k(\frac{(\frac{[A]}{K})^n}{1+(\frac{[A]}{K})^n})</math> | ||
- | [mRNA] | + | {|cellpadding=3 |
+ | |[mRNA]||Concentration of the product | ||
+ | |- | ||
+ | |k||Maximum rate of transcription | ||
+ | |- | ||
+ | |[A]||Concentration of Protein A. A interacts with the promoter to activate or repress the transcription process. | ||
+ | |- | ||
+ | |K||Microscopic dissociation constant. K^n is the equilibrium constant for dissociation | ||
+ | |- | ||
+ | |n||Hill constant | ||
+ | |- | ||
+ | |μ||Activate: μ=0, Repress: μ=1 | ||
+ | |} | ||
+ | |||
+ | *'''Translation''' | ||
+ | |||
+ | The process translation can be regarded as elementary reaction. | ||
+ | |||
+ | <math>\frac{\mathrm{d}\mathrm{[A]}}{\mathrm{d}t}=k\mathrm{[mRNA]}</math> | ||
+ | |||
+ | {|cellpadding=3 | ||
+ | |[A]||Concentration of the product | ||
+ | |- | ||
+ | |k||Rate of translation | ||
+ | |- | ||
+ | |[mRNA]||Concentration of the mRNA | ||
+ | |} | ||
+ | |||
==='''AND Gate 1'''=== | ==='''AND Gate 1'''=== |
Revision as of 16:17, 10 October 2009
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