<h1 id='the-model-of-toggle-switch'><span>The model of toggle switch</span></h1>
<h1 id='the-model-of-toggle-switch'><span>The model of toggle switch</span></h1>
Revision as of 02:44, 17 October 2021
Team:XJTU-China/Model
Model
Model
Our modeling includes five steps:
Establish the model of population dynamics,
which displays
the population change of E. coli;
Establish the model of toggle switch, where
the production of
red fluorescent protein (RFP) and green fluorescent protein (GFP) shows the
effect of toggle
switch;
Establish the model of genetic circuits based
on the model of
toggle switch;
Establish the model of synthesis of
tryptophan based on
Michaelis-Menten equation;
Finally, integrate the above models to establish the model of
production.
Let the initial value of population density be of the environmental capacity. From the
figure, we obtain that the
population density reach balance after about .
Next, to verify the effect of toggle switch, we design a genetic circuits as the figure below
shows.
The promoter controls the production of lacI and green
fluorescent
protein (GFP), and can be promoted by raising temperature. The promoter controls the production of cI857 and red fluorescent
protein
(RFP), and can be promoted by IPTG. cl857 restricts the promoter , while lacI restricts the promoter .
Theory
For , let , and be the concentration of corresponding DNA, RNA and protein.
And let
be the concentration of IPTG.
For the transcription of promoter , we have
where and are the synthesis rate and the degradation rate of
respectively, is the background expression rate of
, and is the induced expression rate of . Equation shows that the change rates of and decrease as increases.
For the transcription of promoter , we have
where is the background expression rate of , and is the induced expression rate of . Equation shows that the change rates of and decrease as increases. And can raise the change rates.
For the translation of protein translation, we have
where and are the synthesis rate and the degradation rate of the
protein
of respectively.
Meanwhile, the correction is performed according to the CDS length.
NAME
LENGTH
CORRECTION RATE
RFP (Benchmark)
GFP
cI857
lacI
Result
When , add IPTG. When , remove IPTG and raise temperature. The results
are
shown in the figure below. From the figure, we can see that there are three stable states.
At first, the concentration of GFP is more than the concentration of RFP;
After adding IPTG, the concentration of RFP outnumbered GFP;
After removing IPTG and raising temperature, the rank of RFP and GFP exchanged again.