Team:USTC CHINA/Modeling/KillSwitch
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We design a circuit of killing switch based on its endogenous genetic system.</br> | We design a circuit of killing switch based on its endogenous genetic system.</br> | ||
- | In B.subtilis, when it comes to the stationary phase, the environmental pressure increases and nutrition becomes limited, so B begin to produce spores. Now the community will be divided into two different parts. One of them are trying to kill others to get enough nutrient , delaying the production of spores and achieving a competitive advantage. Killing is mediated by the exported toxic protein SdpC. SdpI will appear on the membrane surface to avoid itself from being damaged. SdpI could bind free SdpC and autopressor SdpR, to remove SdpR’s inhibition against I and R, to produce more SdpI to offset SdpC, finally guaranteeing the subgroup alive, thereby delaying the spores production.</br> | + | In B.subtilis, when it comes to the stationary phase, the environmental pressure increases and nutrition becomes limited, so B.subtilis begin to produce spores. Now the community will be divided into two different parts. One of them are trying to kill others to get enough nutrient , delaying the production of spores and achieving a competitive advantage. Killing is mediated by the exported toxic protein SdpC. SdpI will appear on the membrane surface to avoid itself from being damaged. SdpI could bind free SdpC and autopressor SdpR, to remove SdpR’s inhibition against I and R, to produce more SdpI to offset SdpC, finally guaranteeing the subgroup alive, thereby delaying the spores production.</br> |
<img src="https://static.igem.org/mediawiki/2013/2/2b/Reporter_3.png" width="500" height="350"> | <img src="https://static.igem.org/mediawiki/2013/2/2b/Reporter_3.png" width="500" height="350"> | ||
<p>We transfer SdpC which is fused by promoter SdpI/R into high copy plasmids in order to damage the balance of the system, thereby killing whole colony. When SdpC appears, SdpI on the membrane will bind free SdpC and adsorb SdpR to cease its inhibition against SdpI P/R, trying to produce more SdpI. At the same time, it will activate the promoter SdpR/I in our circuits and generate more SdpC.The system would fall into an infinite loop, and according to our modeling ,the amount of SdpC increases beyond the ability of SdpI.Thus,the cells with protection mechanism will crack and die because of too much SdpC. All above forms the killing device. | <p>We transfer SdpC which is fused by promoter SdpI/R into high copy plasmids in order to damage the balance of the system, thereby killing whole colony. When SdpC appears, SdpI on the membrane will bind free SdpC and adsorb SdpR to cease its inhibition against SdpI P/R, trying to produce more SdpI. At the same time, it will activate the promoter SdpR/I in our circuits and generate more SdpC.The system would fall into an infinite loop, and according to our modeling ,the amount of SdpC increases beyond the ability of SdpI.Thus,the cells with protection mechanism will crack and die because of too much SdpC. All above forms the killing device. | ||
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<div> | <div> | ||
<h1>The ODE model of singular cells</h1> | <h1>The ODE model of singular cells</h1> | ||
- | There is no denying fact that the essential goal of engineered bacterias who carry this so called “suicide” locus itself is to kill their siblings rather than themselves to ensure the survival of themselves. | + | There is no denying fact that the essential goal of engineered bacterias who carry this so called “suicide” locus itself is to kill their siblings rather than themselves to ensure the survival of themselves. Surely they can kill their siblings, but can they finally eliminate themselves, as we expect? The trivial experiment protocol and huge uncertainty had put off our experiment, and as expected, we failed to achieve the construction of complete reporter system in our laboratory. Fortunately, we could resort to mathematical models to verify the validity of this locus theoretically. |
- | There are six independent variables in individual cells, and | + | There are six independent variables in individual cells, and theoretically if the initial conditions are fixed, all of them will be the univariate functions of time. The following table illustrates the mark and meaning of each variable:</br></br> |
<div>To construct reasonable ordinary differential equation (ODE) model to describe and predict the operation of the suicide system, we followed the law of mass action, one basic law of chemistry and biology.</br> | <div>To construct reasonable ordinary differential equation (ODE) model to describe and predict the operation of the suicide system, we followed the law of mass action, one basic law of chemistry and biology.</br> | ||
Taken as a statement about kinetics, the law states that the rate of an elementary reaction (a reaction that proceeds through only one transition state, which is one mechanistic step) is proportional to the product of the concentrations of the participating molecules. In modern chemistry this is derived using statistical mechanics. Despite the complicated chemical reactions involved in the process of transcription and translation, it is common and logically sound to view the expression of one particular gene as an elementary reaction and assume the repression effects of the protein itself encodes and the repressor are both linear.</br> | Taken as a statement about kinetics, the law states that the rate of an elementary reaction (a reaction that proceeds through only one transition state, which is one mechanistic step) is proportional to the product of the concentrations of the participating molecules. In modern chemistry this is derived using statistical mechanics. Despite the complicated chemical reactions involved in the process of transcription and translation, it is common and logically sound to view the expression of one particular gene as an elementary reaction and assume the repression effects of the protein itself encodes and the repressor are both linear.</br> | ||
- | According to the law of mass action, we got six independent differential | + | According to the law of mass action, we got six independent differential equations of the variables:</br> |
<img src="https://static.igem.org/mediawiki/2013/e/e8/For1%281%29.png"></br></br></br> | <img src="https://static.igem.org/mediawiki/2013/e/e8/For1%281%29.png"></br></br></br> | ||
<img src="https://static.igem.org/mediawiki/2013/2/23/For2%281%29.png"></br></br></br> | <img src="https://static.igem.org/mediawiki/2013/2/23/For2%281%29.png"></br></br></br> | ||
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<img src="https://static.igem.org/mediawiki/2013/3/31/For5%281%29.png"></br></br></br> | <img src="https://static.igem.org/mediawiki/2013/3/31/For5%281%29.png"></br></br></br> | ||
<img src="https://static.igem.org/mediawiki/2013/c/cb/For6%281%29.png"></br></br></br> | <img src="https://static.igem.org/mediawiki/2013/c/cb/For6%281%29.png"></br></br></br> | ||
- | The following table explain the constants in the above ODE | + | The following table explain the constants in the above ODE group:</br></br></div> |
<table border="1" align="center" frame="box"> | <table border="1" align="center" frame="box"> | ||
<tr> | <tr> |
Revision as of 13:18, 24 October 2013