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− | Section2 | + | Initial assumptions |
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| + | Reference |
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− | Section1
| + | Overview |
| </a> | | </a> |
| </h2> | | </h2> |
− | <p><strong>Instructions: you have the change not only the main text, but also have to modify the text in the navgation bar on the left side. Now put your content here and do the same for the following sections. </strong>xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx Note template is here --- | + | <p> The locomotion and adhesion of E.coli in real human body were too complex to describe and to detect, whereas the adhesion to detachment ratio was essential for our engineered E.coli’s specific binding performance to lesions. Therefore, we want to simulate the those process through in silico modeling.</p> |
− | <span class="footnote_link">OD
| + | <p>The major two questions we want to ask are: </p> |
− | <span class="footnote">
| + | <!--*********************** list-elements template ***********************--> |
− | <span class="footnote_header">OD</span>
| + | <ul class="list-elements" > |
− | <span class="footnote_txt">Optical density</span>
| + | <li>1. How would microbe move in the mucus layer. </li> |
− | </span>
| + | <li>2. To which extent engineered E.coli could specifically bind to CRC lesions. </li> |
− | </span>
| + | |
− | .</p>
| + | </ul> |
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| <h2> | | <h2> |
| <a id="section2"> | | <a id="section2"> |
| <span class="place_holder"></span> | | <span class="place_holder"></span> |
− | Section2 | + | Initial Assumptions |
| </a> | | </a> |
| </h2> | | </h2> |
− | <p>xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxxxxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxxxxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx
| + | <!--*********************** list-elements template ***********************--> |
| + | <ul class="list-elements" > |
| + | <li>1. The fluid environment of colon was laminar flow with 1 atm Pa. . </li> |
| + | <li>2. The elastic properties of E.coli was mainly defined by peptidoglycan layer. </li> |
| + | <li>3. The force field in colon was in macro scale. </li> |
| + | |
| + | </ul> |
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| </p> | | </p> |
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| <a id="section3"> | | <a id="section3"> |
| <span class="place_holder"></span> | | <span class="place_holder"></span> |
− | Section3 | + | Theory |
| </a> | | </a> |
| </h2> | | </h2> |
− | <p>xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx. The text-link template is here.</p> | + | <p>The major equations used in locomotion model were:</p> |
− | <a title="https://static.igem.org/mediawiki/2018/0/09/2018_InterLab_Plate_Reader_Protocol.pdf" href="https://static.igem.org/mediawiki/2018/0/09/2018_InterLab_Plate_Reader_Protocol.pdf">2018 Interlab Plate Reader Protocol</a> <br/>
| + | |
− | <a title="http://parts.igem.org/Help:Protocols/Transformation" href="http://parts.igem.org/Help:Protocols/Transformation">Protocols/Transformation</a>
| + | <p>$$\rho \frac{\partial u_{fluid} }{\partial t}+\rho (u_{fluid}\cdot \triangledown )=\triangledown \cdot [-pI+\mu (\triangledown u_{fluid}+(\triangledown u_{fluid})^{T}]+F+\rho g (1) $$ <br/> |
− |
| + | $$\rho \frac{\partial ^{2}u_{solid}}{\partial t^{2}}= \triangledown \cdot \left ( F S \right )^{t}+F_{v}, F=I+\triangledown u_{solid} (2) $$ <br/> |
| + | $$S=S_{ad}+\jmath _{i}F^{-T}_{ineI}\left ( C:\epsilon _{eI} \right )F^{-1}_{ineI}, \epsilon _{eI}=\frac{1}{2}\left ( F^{T_{eI}}F_{eI}-I \right ), F_{eI}=FF^{-1}_{ineI} (3)$$ <br/> |
| + | $$ S_{ad}=S_{0}+S_{ext}+S_{q} (4) $$ <br/> |
| + | $$ \epsilon =\frac{1}{2}[(\triangledown u_{solid})^{T}+\triangledown u_{solid}+(\triangledown u_{solid})^{T}\triangledown u_{solid}] (5) $$ <br/> |
| + | $$ C=C(E,\vartheta ) (6)$$ <p> |
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| <h2> | | <h2> |
| <a id="section4"> | | <a id="section4"> |
| <span class="place_holder"></span> | | <span class="place_holder"></span> |
− | section4 | + | Results |
| </a> | | </a> |
| </h2> | | </h2> |
− | <p> xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx The figure template is here.</p> | + | <p> The velocity field of particles was in Gaussian distribution,of which the inner particles move quiker than outer ones (Fig.1). |
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| <!--******************************Fig 1****************************--> | | <!--******************************Fig 1****************************--> |
| <div class="img_in_text zoom_out_able"> | | <div class="img_in_text zoom_out_able"> |
− | <img src="https://static.igem.org/mediawiki/2018/6/64/T--SJTU-BioX-Shanghai--interlab_Fig1.jpg"/> | + | <img src="https://static.igem.org/mediawiki/2018/1/17/T--SJTU-BioX-Shanghai--particle_tracing.png"/> |
− | <p class="fig_illustration">Fig 1. The particle standard curve obtained form the 2nd calibration experiment.</p> | + | <p class="fig_illustration">Fig 1.The locomotion of particle in laminar flow.</p> |
| </div> | | </div> |
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| + | </p> |
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− | <p> xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx.</p>
| + | |
− | <p>The table template is here.</p>
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| + | <p> </p> |
| + | |
| + | |
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| + | <!--****************************************************************--> |
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− |
| + | |
− | <!--*****************************Table 1****************************-->
| + | |
− | <div class="table_in_text">
| + | |
− | <p class="table_illustration">Table 1. Colony forming units per 0.1 OD<sub>600</sub></p>
| + | |
− | <table style="border-collapse: collapse; ">
| + | |
− | <tr style="border-top:2px solid #000;">
| + | |
− | <th rowspan="2">samples</th>
| + | |
− | <th colspan="3">dilution factor</th>
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− | <th rowspan="2">CFU/mL</th>
| + | |
− | </tr>
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− |
| + | |
− | <tr>
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− | <td>8×10<sup>4</sup></td>
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− | <td>8×10<sup>5</sup></td>
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− | <td>8×10<sup>6</sup></td>
| + | |
− | </tr>
| + | |
− |
| + | |
− | <tr style="border-top:2px solid #000;">
| + | |
− | <td>1.1</td> <td>TNTC</td> <td>48</td> <td>11</td> <td>3.84E+07</td>
| + | |
− | </tr>
| + | |
− | <tr>
| + | |
− | <td>1.2</td> <td>248</td> <td>41</td> <td>10</td> <td>3.28E+07</td>
| + | |
− | </tr>
| + | |
− | <tr>
| + | |
− | <td>1.3</td> <td>172</td> <td>54</td> <td>5</td> <td>4.32E+07</td>
| + | |
− | </tr>
| + | |
− | <tr>
| + | |
− | <td>2.1</td> <td>TNTC</td> <td>143</td> <td>20</td> <td>1.14E+08</td>
| + | |
− | </tr>
| + | |
− | <tr>
| + | |
− | <td>2.2</td> <td>TNTC</td> <td>153</td> <td>25</td> <td>1.22E+08</td>
| + | |
− | </tr>
| + | |
− | <tr>
| + | |
− | <td>2.3</td> <td>TNTC</td> <td>151</td> <td>18</td> <td>1.21E+08</td>
| + | |
− | </tr>
| + | |
− | <tr>
| + | |
− | <td>3.1</td> <td>TNTC</td> <td>119</td> <td>16</td> <td>9.52E+07</td>
| + | |
− | </tr>
| + | |
− | <tr>
| + | |
− | <td>3.2</td> <td>TNTC</td> <td>125</td> <td>19</td> <td>1.00E+08</td>
| + | |
− | </tr>
| + | |
− | <tr>
| + | |
− | <td>3.3</td> <td>TNTC</td> <td>89</td> <td>18</td> <td>7.12E+07</td>
| + | |
− | </tr>
| + | |
− | <tr>
| + | |
− | <td>4.1</td> <td>TNTC</td> <td>209</td> <td>16</td> <td>1.67E+08</td>
| + | |
− | </tr>
| + | |
− | <tr>
| + | |
− | <td>4.2</td> <td>TNTC</td> <td>130</td> <td>17</td> <td>1.04E+08</td>
| + | |
− | </tr>
| + | |
− | <tr style="border-bottom:2px solid #000;">
| + | |
− | <td>4.3</td> <td>TNTC</td> <td>164</td> <td>10</td> <td>1.31E+08</td>
| + | |
− | </tr>
| + | |
− | | + | |
− | </table>
| + | |
− | </div>
| + | |
− |
| + | |
− |
| + | |
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| <h2> | | <h2> |
| <a id="section5"> | | <a id="section5"> |
| <span class="place_holder"></span> | | <span class="place_holder"></span> |
− | Section5 | + | Adjusted model |
| </a> | | </a> |
| </h2> | | </h2> |
− | <p>XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX XXX </p> | + | <p> We then considered some biological fators that may influence the binding of E.coli to epithelium. Considering the concentrations of IgA and mucin in colorectal microenvironment may influence the specific binding property demonstrated in Kirstie McLoughlin's work <strong>(1)</strong>, we ajust the Young's module based on those parameters. </p> |
| + | <p> $$E_{g}=\frac{\sigma _{g}}{\epsilon _{g}}\left ( 1-v_{pg}v_{g\rho } \right ) (7) $$ <br> |
| + | <p> $$E_{p}=\frac{\sigma _{p}}{\epsilon _{p}}\left ( 1-v_{pg}v_{g\rho } \right ) (8) $$ <br> <p> |
| + | |
| + | <p>The Young’s moduli of glycan strands Eg and peptide cross-links Ep were calculated (7-8). |
| + | Where dimensionless Poisson's ratios,$v_{pg} $and $v_{gp} $ relate the spontaneous strain arising in one direction, stresses $\epsilon _{g} $ and $ \epsilon _{p} $ are the derivatives of the free energy with initial set of randomized number. </p> |
| + | |
| + | <p> The simulation result showed a liquid-solid coupling phenomenon, in which the binding of microbe onto epithelium would change the flow direction of around liquid. Thus the velocity of small molecules' movement would slow down, suggesting a higher binding ability of E.coli in the enviroment that is rich of IgA. This conclusion could explain the slight increase in binding ability of non engineered E.coli to CRC related colorectum, compared to that to the normal colon. |
| + | |
| + | |
| + | <!--******************************illustration of hydrogel introduction****************************--> |
| + | |
| + | <div class="img_in_text zoom_out_able"> |
| + | <img src="https://static.igem.org/mediawiki/2018/d/d7/T--SJTU-BioX-Shanghai--model_coupling.gif"/> |
| + | <p class="fig_illustration">Fig 2. Coupling reaction of microbe and liquid .</p> |
| + | </div> |
| + | |
| + | <h2> |
| + | <a id="section6"> |
| + | <span class="place_holder"></span> |
| + | Reference |
| + | </a> |
| + | </h2> |
| + | <p>[1] McLoughlin, K., Schluter, J., Rakoff-Nahoum, S., Smith, A. L., & Foster, K. R. (2016). Host selection of microbiota via differential adhesion. Cell Host & Microbe, 19(4), 550-559.</p> |
| + | <p>[2] Gumbart, J. C., Beeby, M., Jensen, G. J., & Roux, B. (2014). Escherichia coli peptidoglycan structure and mechanics as predicted by atomic-scale simulations. PLoS computational biology, 10(2), e1003475.</p> |
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