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| + | <h1>Introduction</h1> |
| + | Before we began using synthetic biology to develop a system for bioremediation of chlorinated waste, we thought it was important to work towards an answer to the above question. To do this, we used information from the literature (Gisi et al, 1998) about the metabolism of the native bacterium <font style="font-style: italic;">Methylobacterium extorquens</font> DM4. |
| + | <br><br> |
| + | We then worked on a model to calculate both the pH change of the system and the volume of DCM degraded over time. This was achieved by using a combination of Michaelis-Menten kinetics, ordinary differential equations and stoichiometric relations. |
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- | <div style="background-color:#D9D9D9; opacity:0.7; z-index:5; Height:75px; width:100%;min-width:900px;font-size:65px;margin-top:10px;font-family:Helvetica;padding-top:5px; font-weight: 450;">
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- | <h1>Introduction</h1>
| |
- | Before we began using synthetic biology to develop a system for bioremediation of chlorinated waste, we thought it was important to work towards an answer to the above question. To do this, we used information from the literature (Gisi et al, 1998) about the metabolism of the native bacterium <font style="font-style: italic;">Methylobacterium extorquens</font> DM4.
| |
- | <br><br>
| |
- | We then worked on a model to calculate both the pH change of the system and the volume of DCM degraded over time. This was achieved by using a combination of Michaelis-Menten kinetics, ordinary differential equations and stoichiometric relations.
| |
- |
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- | </div>
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| <div class="row"> | | <div class="row"> |
- | <a href="#hide1" class="hide" id="hide1"><div class="orange_news_block2"> | + | <a href="#show1" class="show modelling-row" id="show1"><div class="modelling"> |
- | <h1black>How much DCM could the native bacterium degrade?</h1black> | + | <h1white>How much DCM could the native bacterium degrade?</h1white> |
| <img src="https://static.igem.org/mediawiki/2014/4/4d/Oxford_plus-sign-clip-art.png" style="float:right;position:relative; width:2%;" /> | | <img src="https://static.igem.org/mediawiki/2014/4/4d/Oxford_plus-sign-clip-art.png" style="float:right;position:relative; width:2%;" /> |
| </div></a> | | </div></a> |
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- | <a href="#show1" class="show" id="show1"><div class="orange_news_block2"> | + | <a href="#hide1" class="hide" id="hide1"><div class="modelling"> |
- | <h1black>How much DCM could the native bacterium degrade?</h1black> | + | <h1white>How much DCM could the native bacterium degrade?</h1white></div></a> |
- | </div></a> | + | |
| <div class="list"> | | <div class="list"> |
- | <div class="white_news_block"> | + | <div class="white_news_block2"> |
| <h1blue2>Calculating total DCM degraded</h1blue2> | | <h1blue2>Calculating total DCM degraded</h1blue2> |
| <img src="https://static.igem.org/mediawiki/2014/5/5c/Oxford_DCMdeg2.png" style="float:right;position:relative; width:40%;" /> | | <img src="https://static.igem.org/mediawiki/2014/5/5c/Oxford_DCMdeg2.png" style="float:right;position:relative; width:40%;" /> |
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| (what are Gompertz functions?)</a>. An example output growth curve of the model is shown here. | | (what are Gompertz functions?)</a>. An example output growth curve of the model is shown here. |
| <br><br> | | <br><br> |
- | The scaling of the growth rate of the Gompertz function comes directly from growth curves of the DM4 bacteria that we obtained in the lab. <u>See more about our work with growth curves here.</u> | + | The scaling of the growth rate of the Gompertz function comes directly from growth curves of the DM4 bacteria that we obtained in the lab. |
| <br><br> | | <br><br> |
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| <li>d[Ndcm]/dt = rate of DCM molecule degradation (s-1)</li> | | <li>d[Ndcm]/dt = rate of DCM molecule degradation (s-1)</li> |
- | <li>Kcat = dcmA turnover rate (= 0.6 s-1 for DM4)</li> | + | <li>kcat = dcmA turnover rate (= 0.6 s-1 for DM4)</li> |
| <li>[DCM] = DCM concentration (= 0.02M for our system)</li> | | <li>[DCM] = DCM concentration (= 0.02M for our system)</li> |
| <li>[DcmA] = Number of DcmA molecules per cell (87576) <a href="https://2014.igem.org/Team:Oxford/what_are_microcompartments?#hide4"> | | <li>[DcmA] = Number of DcmA molecules per cell (87576) <a href="https://2014.igem.org/Team:Oxford/what_are_microcompartments?#hide4"> |
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- | <a href="#hide2" class="hide" id="hide2"><div class="orange_news_block2"> | + | <a href="#show2" class="show modelling-row" id="show2"><div class="modelling"> |
- | <h1black>How much would the pH change by?</h1black> | + | <h1white>How much would the pH change by?</h1white> |
| <img src="https://static.igem.org/mediawiki/2014/4/4d/Oxford_plus-sign-clip-art.png" style="float:right;position:relative; width:2%;" /> | | <img src="https://static.igem.org/mediawiki/2014/4/4d/Oxford_plus-sign-clip-art.png" style="float:right;position:relative; width:2%;" /> |
| </div></a> | | </div></a> |
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- | <h1black>How much would the pH change by?</h1black> | + | <h1white>How much would the pH change by?</h1white></div></a> |
- | </div></a> | + | |
| <div class="list"> | | <div class="list"> |
- | <div class="white_news_block"> | + | <div class="white_news_block2"> |
| <h1blue2>Calculating the pH change</h1blue2> | | <h1blue2>Calculating the pH change</h1blue2> |
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| <div class="row"> | | <div class="row"> |
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- | <h1black>What is a Gompertz function?</h1black> | + | <h1white>What is a Gompertz function?</h1white> |
| <img src="https://static.igem.org/mediawiki/2014/4/4d/Oxford_plus-sign-clip-art.png" style="float:right;position:relative; width:2%;" /> | | <img src="https://static.igem.org/mediawiki/2014/4/4d/Oxford_plus-sign-clip-art.png" style="float:right;position:relative; width:2%;" /> |
| </div></a> | | </div></a> |
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- | <a href="#show3" class="show" id="show3"><div class="orange_news_block2"> | + | <a href="#hide3" class="hide" id="hide3"><div class="modelling"> |
- | <h1black>What is a Gompertz function?</h1black> | + | <h1white>What is a Gompertz function?</h1white></div></a> |
- | </div></a> | + | |
| <div class="list"> | | <div class="list"> |
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| + | <div class="white_news_block2"> |
| <h1blue2>Gompertz Functions</h1blue2> | | <h1blue2>Gompertz Functions</h1blue2> |
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- | <h1black>How can we reduce the drop in pH?</h1black> | + | <h1white>How can we reduce the drop in pH?</h1white> |
| <img src="https://static.igem.org/mediawiki/2014/4/4d/Oxford_plus-sign-clip-art.png" style="float:right;position:relative; width:2%;" /> | | <img src="https://static.igem.org/mediawiki/2014/4/4d/Oxford_plus-sign-clip-art.png" style="float:right;position:relative; width:2%;" /> |
| </div></a> | | </div></a> |
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- | <a href="#show4" class="show" id="show4"><div class="orange_news_block2"> | + | <a href="#hide4" class="hide" id="hide4"><div class="modelling"> |
- | <h1black>How can we reduce the pH drop?</h1black> | + | <h1white>How can we reduce the drop in pH?</h1white></div></a> |
- | </div></a> | + | |
| <div class="list"> | | <div class="list"> |
- | <div class="white_news_block"> | + | <div class="white_news_block2"> |
| <h1blue2>Using buffers to reduce the pH change of our system</h1blue2> | | <h1blue2>Using buffers to reduce the pH change of our system</h1blue2> |
| + | <br><br> |
| + | We have investigated the effect of using buffers in the aqueous part of our system.<br> |
| + | As a first approximation, we model our system of bacteria turning over DCM, producing HCl, as a chemical system in which HCl immediately enters the 'bulk' (extracellular) solution; in this system we have a single buffer (HEPES) to reduce the drop in pH, maximising the amount of DCM the entire system can degrade before the pH drops below a toxic level. |
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- | As one of the products of our reaction is HCl, we have been able to calculate the pH change of the system. However, since a deviation of neutral pH is unfavourable for the bacteria we are working with, we have investigated the effect of using buffers in the aqueous part of our system.
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| <br><br> | | <br><br> |
| Derivation of the Van Slyke equation: | | Derivation of the Van Slyke equation: |
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| Upon solving the equation in Matlab, it was clear that only a relatively low concentration (0.05 M) of buffer was needed to significantly reduce the pH change of the solution: | | Upon solving the equation in Matlab, it was clear that only a relatively low concentration (0.05 M) of buffer was needed to significantly reduce the pH change of the solution: |
| <br><br> | | <br><br> |
- | <img src="https://static.igem.org/mediawiki/2014/7/76/Oxford_DCMdeg17.png" style="float:left;position:relative; width:100%; margin-left:0%; margin-right:0%;margin-bottom:2%;" /> | + | <img src="https://static.igem.org/mediawiki/2014/5/5c/Oxford_DCMdeg17.jpg" style="float:left;position:relative; width:100%; margin-left:0%; margin-right:0%;margin-bottom:2%;" /> |
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- | where the red line is C=0M.
| + | The numerical solution to this differential equation was confirmed by reducing the n interval by a factor of 100, which gave the same result. |
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- | <a href="#hide5" class="hide" id="hide5"><div class="orange_news_block2"> | + | <a href="#show5" class="show modelling-row" id="show5"><div class="modelling"> |
- | <h1black>How does the amount of water added to the system affect the output?</h1black> | + | <h1white>How does the amount of water added affect the output?</h1white> |
| <img src="https://static.igem.org/mediawiki/2014/4/4d/Oxford_plus-sign-clip-art.png" style="float:right;position:relative; width:2%;" /> | | <img src="https://static.igem.org/mediawiki/2014/4/4d/Oxford_plus-sign-clip-art.png" style="float:right;position:relative; width:2%;" /> |
| </div></a> | | </div></a> |
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- | <h1black>How does the amount of water added to the system affect the output?</h1black> | + | <h1white>How does the amount of water added affect the output?</h1white></div></a> |
- | </div></a> | + | |
| <div class="list"> | | <div class="list"> |
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| <h1blue2>Calculating the pH change</h1blue2> | | <h1blue2>Calculating the pH change</h1blue2> |
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- | <h1black>How does the Kcat of the system affect the output?</h1black> | + | <h1white>How does the kcat of the system affect the output?</h1white> |
| <img src="https://static.igem.org/mediawiki/2014/4/4d/Oxford_plus-sign-clip-art.png" style="float:right;position:relative; width:2%;" /> | | <img src="https://static.igem.org/mediawiki/2014/4/4d/Oxford_plus-sign-clip-art.png" style="float:right;position:relative; width:2%;" /> |
| </div></a> | | </div></a> |
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- | <a href="#show6" class="show" id="show6"><div class="orange_news_block2"> | + | <a href="#hide6" class="hide" id="hide6"><div class="modelling"> |
- | <h1black>How does the Kcat of the system affect the output?</h1black> | + | <h1white>How does the kcat of the system affect the output?</h1white></div></a> |
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| <div class="list"> | | <div class="list"> |
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| The apparent uni-molecular rate constant kcat, also called the turnover number, denotes the maximum number of enzymatic reactions catalysed per second. | | The apparent uni-molecular rate constant kcat, also called the turnover number, denotes the maximum number of enzymatic reactions catalysed per second. |
| <br><br> | | <br><br> |
| We used our model to predict the response of the system to a change in the kcat value of the DCM degradation enzyme, dcmA. | | We used our model to predict the response of the system to a change in the kcat value of the DCM degradation enzyme, dcmA. |
- | Increasing the value of Kcat by a significant amount is unrealistic in the length of our project. However, in future work, the kcat could potentially be substantially improved. | + | Increasing the value of kcat by a significant amount is unrealistic in the length of our project. However, in future work, the kcat could potentially be substantially improved. |
| <br><br> | | <br><br> |
| In the graph shown here, the total volume degraded doesn't change. This is because the amount of HCl that the system requires to reach a toxic pH level is constant, as we are not varying the volume of the aqueous layer. To increase the total amount of DCM degraded, we simply need to add more water or a pH buffer to the system. | | In the graph shown here, the total volume degraded doesn't change. This is because the amount of HCl that the system requires to reach a toxic pH level is constant, as we are not varying the volume of the aqueous layer. To increase the total amount of DCM degraded, we simply need to add more water or a pH buffer to the system. |
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- | <h1black>Potential benefits?</h1black> | + | <h1white>Potential benefits?</h1white> |
| <img src="https://static.igem.org/mediawiki/2014/4/4d/Oxford_plus-sign-clip-art.png" style="float:right;position:relative; width:2%;" /> | | <img src="https://static.igem.org/mediawiki/2014/4/4d/Oxford_plus-sign-clip-art.png" style="float:right;position:relative; width:2%;" /> |
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- | <h1black>Potential benefits?</h1black> | + | <h1white>Potential benefits?</h1white></div></a> |
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| <div class="list"> | | <div class="list"> |
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| Increasing the kcat of the enzyme greatly improve our system, as you can see in the models shown above. | | Increasing the kcat of the enzyme greatly improve our system, as you can see in the models shown above. |
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- | <h1black>How can we use the pH drop?</h1black> | + | <h1white>How can we use the pH drop?</h1white> |
| <img src="https://static.igem.org/mediawiki/2014/4/4d/Oxford_plus-sign-clip-art.png" style="float:right;position:relative; width:2%;" /> | | <img src="https://static.igem.org/mediawiki/2014/4/4d/Oxford_plus-sign-clip-art.png" style="float:right;position:relative; width:2%;" /> |
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- | <h1black>How can we use the pH drop?</h1black> | + | <h1white>How can we use the pH drop?</h1white></div></a> |
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| <h1blue2>How could we measure the pH?</h1blue2> | | <h1blue2>How could we measure the pH?</h1blue2> |
| <img src="https://static.igem.org/mediawiki/2014/8/81/Oxford_DCMdeg21.png" style="float:right;position:relative; width:40%; margin-left:0%; margin-right:0%;margin-bottom:2%;" /> | | <img src="https://static.igem.org/mediawiki/2014/8/81/Oxford_DCMdeg21.png" style="float:right;position:relative; width:40%; margin-left:0%; margin-right:0%;margin-bottom:2%;" /> |
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