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<sup> Figure 1 </sup> | <sup> Figure 1 </sup> | ||
− | $$ \color{white}{ | + | $$ \color{white}{ p \underset{t <sub> 1 </sub> }{\rightarrow} m \underset{<sub> 2 </sub>}{\rightarrow} p } $$ |
<p> The equation above describes the process of which the gene undergoes transcription to produce mRNA. The mRNA carries the genetic information copied from the DNA which codes for protein. The expression of protein lead to fluorescence which is the desired output of the system. </p> | <p> The equation above describes the process of which the gene undergoes transcription to produce mRNA. The mRNA carries the genetic information copied from the DNA which codes for protein. The expression of protein lead to fluorescence which is the desired output of the system. </p> | ||
<sup> Figure 2 </sup> | <sup> Figure 2 </sup> | ||
− | $$ \color{white}{ | + | $$ \color{white}{ \cdot m \underset{Degradation}{\rightarrow} \oslash } $$ |
− | $$ \color{white}{ | + | $$ \color{white}{ p \underset{Degradation}{\rightarrow} \oslash } $$ |
<p> The two equations above state the same time, the concentration of protein and mRNA would undergo degradation which means the concentration would drop. However, since there is always protein and mRNA being created, over time, the creation and degradation keep the concentration constant. <sup> 2 </sup> <p> | <p> The two equations above state the same time, the concentration of protein and mRNA would undergo degradation which means the concentration would drop. However, since there is always protein and mRNA being created, over time, the creation and degradation keep the concentration constant. <sup> 2 </sup> <p> | ||
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<sup> Figure 3 </sup> | <sup> Figure 3 </sup> | ||
− | $$ \color{white}{ \frac{ | + | $$ \color{white}{ \frac{dm}{dt} = k_{1} -d _{1 } m } $$ |
− | $$ \color{white}{ \frac{ | + | $$ \color{white}{ \frac{dp}{dt} = k_{2} \cdot m - d_{2} \cdot p } $$ |
<p> Where... </p> | <p> Where... </p> | ||
<p> <ul> | <p> <ul> | ||
− | <li> | + | <li>m is the concentration of mRNA.</li> |
− | <li> | + | <li>p is the concentration of Protein.</li> |
<li>k<sub> 1 </sub> is the constitutive transcription rate. This represents the number of mRNA molecules produced per gene, per unit of time.</li> | <li>k<sub> 1 </sub> is the constitutive transcription rate. This represents the number of mRNA molecules produced per gene, per unit of time.</li> | ||
− | <li> d <sub> 1 </sub> is the mRNA degradation rate </li> | + | <li> d <sub> 1 </sub> is the mRNA degradation rate. </li> |
<li>k<sub> 2 </sub> is the translation rate. This represents the number of protein molecules produced per mRNA molecule, per unit of time.</li> | <li>k<sub> 2 </sub> is the translation rate. This represents the number of protein molecules produced per mRNA molecule, per unit of time.</li> | ||
<li> d <sub> 2 </sub> is the protein degradation rate. </li> | <li> d <sub> 2 </sub> is the protein degradation rate. </li> | ||
+ | <li> t <sub> 1 </sub> is the process of Transcription. </li> | ||
+ | <li> t <sub> 2 </sub> is the process of Translation. </li> | ||
</ul> | </ul> | ||
<br> </br> | <br> </br> |
Revision as of 15:49, 1 November 2017
MODELLING