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| + | <div id="description" align="justify" style = "width:950px; height:300px"> |
- | <center><img style="height:60px;margin-top:10px"; padding:0;"
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- | src="https://static.igem.org/mediawiki/2013/f/f5/UCSF_Modeling_Image023.png"> </center></div>
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- | <div id="description" align="justify" style = "width:950px; height:40px"> | + | |
- | <p><font face="calibri" size = "4">Where the amount of dCas9 available in the system is given by:</font>
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- | <center><img style="height:60px;margin-top:10px"; padding:0;"
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- | src="https://static.igem.org/mediawiki/2013/2/26/AmtdCas9.png"> </center></div>
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- | <div id="description" style = "width:950px; height:45px" align="justify">
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| <font face="calibri" size = "4"> | | <font face="calibri" size = "4"> |
- | The available amount of dCas9 depends on the amount of the two different complexes and also the amount of free dCas9. It has the following parameters: | + | The parameters for these equations are shown below:<br><p> |
- | </font> | + | |
- | </div> | + | |
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| + | <br>D – number of engineered donor cells <br> |
| + | R – number of recipient cells <br> |
| + | T – number of transconjugant cells <br> |
| + | ϕ – maximum growth rate <br> |
| + | K<sub>max</sub> – carrying capacity <br> |
| + | γ – conjugation rate <br> |
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- | src="https://static.igem.org/mediawiki/2013/9/9f/UCSF_Modeling_image025.png"> </center></div>
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- | src="https://static.igem.org/mediawiki/2013/c/c8/UCSF_Modeling_Image026.png"> </center></div>
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- | <p><font face="calibri" size = "4">The equations for the gRNAs depend on the amount of the gRNAs that is produced, the degradation rate, and also the rate at which the gRNA complexes with dCas9. With the quasi-steady state assumption, the terms for complexing with dCAS9 drop out and the final equations for the gRNAs are similar to equations (1) and (2) for the fluorescent proteins:</font>
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- | <center><img style="height:100px;margin-top:10px"; padding:0;"
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- | src="https://static.igem.org/mediawiki/2013/2/23/GRNAS.png"> </center></div>
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- | <div id="description" align="justify" style = "width:950px; height:90px">
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- | <font face="calibri" size = "4">
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- | <br><b><FONT COLOR="#008000">PARAMETERS</FONT COLOR="#008000"></b> <p>
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- | This model has many parameters, so in order for it to be more useful, we need to reduce the number of parameters that are undetermined. To accomplish this, we gathered some values from literature and also did experiments to find other parameters (Table1).
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- | </font>
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- | <center><img style="height:350px;margin-top:20px"; padding:0;"
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- | src="https://static.igem.org/mediawiki/2013/9/95/UCSF_Modeling_Image088.png"> </center></div>
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- | <div id="description" style = "width:950px; height:55px" align="justify">
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- | <font face="calibri" size = "4">
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- | <b>How did we fit parameters?</b>
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- | A few parameters are properties of the promoters (A, B, k, n). By determining the dosage response of a promoter to inducer we are able to fit those parameters using a curve fitting tool to get the following values.
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- | </font>
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- | <center><img style="height:130px;margin-top:10px"; padding:0;"
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- | src="https://static.igem.org/mediawiki/2013/d/d7/Known_Parameters.png"> </center></div>
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- | <center><img style="height:200px;margin-top:10px"; padding:0;"
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- | src="https://static.igem.org/mediawiki/2013/7/7b/Experimental_Data.png"> </center></div>
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- | <div id="description" style = "width:950px; height:55px" align="justify">
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- | <b>How is the hill function affected by the amount of gRNA/dCas9 complex?</b>
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- | The previous plot helped us determine a few parameters, but there are still a few parameters we have no values for from experimental data or from literature. The following plots show how the parameter for amounts of the gRNA/dCas9 complex affects the behavior of the model. </div>
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- | <center><img style="height:330px;margin-top:10px"; padding:0;"
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- | src="https://static.igem.org/mediawiki/2013/6/6f/Hill_Function-1.png"></center></div>
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- | src="https://static.igem.org/mediawiki/2013/9/9d/Hill_Function-2.png"></center></div>
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- | <div id="description" style = "width:950px; height:205px" align="justify">
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- | <font face="calibri" size = "4">
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- | From given values for inducer concentrations and amounts of complex, we can calculate the amount of fluorescent protein that should be present. Our model can help us design an experiment that helps us calculate parameters that are still unknown.
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- | <b>How does the model look with our actual “low” and “high” promoters?</b> <br>
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- | If the only change in the low and high functions (F<sub>H</sub> and F<sub>L</sub>) is the K values (which determine the sensitivity of the promoters), then we don’t get our desired behavior. However, there are other parameters that might give us the desired behavior for the low and high promoters. <br>
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- | If we set B<sub>L</sub> to 443.7 and B<sub>H</sub> to 443.7*1.25, and if we set the half max values to k<sub>L</sub> = 11.45 and k<sub>H</sub>=17, the promoters have the following profile:
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- | <center><img style="height:330px;margin-bottom:10px"; padding:0;"
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- | src="https://static.igem.org/mediawiki/2013/3/3d/UCSF_Modeling_Image033.png"></center></div>
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- | <div id="description" style = "width:950px; height:45px" align="justify">
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- | <font face="calibri" size = "4">And they generate the following behavior in the full model:</div>
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- | <center><img style="height:330px;margin-top:10px"; padding:0;"
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- | src="https://static.igem.org/mediawiki/2013/d/d6/UCSF_Modeling_Image034.jpg"></center></div>
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- | <div id="description" style = "width:950px; height:35px" align="justify">
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- | <font face="calibri" size = "4">Thus, based on our model, if certain conditions are met, our synthetic circuit will work as expected.
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- | <div id="description" style = "width:950px; height:105px" align="justify">
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- | <font face="calibri" size = "4">
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- | <br><br>
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- | <b>How does the system change when the hill coefficient is manipulated?</b>
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- | In this first plot, the hill coefficients for both the low and the high function are the same number: 2.551. This number is the one we determined from our experimental data. <br><p>
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- | n<sub>L</sub> = 2.551<br>
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- | n<sub>H</sub> = 2.551<br>
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- | </div>
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- | <center><img style="height:330px;margin-top:10px"; padding:0;"
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- | src="https://static.igem.org/mediawiki/2013/0/04/Modeling_SS-1.png"></center></div>
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- | <div id="description" style = "width:950px; height:125px" align="justify">
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- | <font face="calibri" size = "4">
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- | We can see that the switch from GFP to RFP is relatively sharp, and that RFP seems to be expressed in higher concentrations of inducer, while GFP is being expressed in lower concentrations.
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- | In this next plot, the only thing that changed was the hill coefficient for the high function. In the first plot, it was 2.551, in the second plot, it is 1.551. <br><p>
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- | n<sub>L</sub> = 2.551<br>
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- | n<sub>H</sub> = 1.551<br>
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- | </div>
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- | <center><img style="height:330px;margin-top:5px"; padding:0;"
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- | src="https://static.igem.org/mediawiki/2013/6/69/Modeling_SSPlot-2.png"></center></div>
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- | <div id="description" style = "width:950px; height:125px" align="justify">
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- | <font face="calibri" size = "4">
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- | It is similar to the first graph in that the switch between GFP and RFP is sharp. However, RFP is being expressed in both low and high concentrations of inducer, while GFP is being expressed in medium concentrations. </div>
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