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<p>We want to know the fittest ki1 for the model to sense the iron and the concentrate of iron. | <p>We want to know the fittest ki1 for the model to sense the iron and the concentrate of iron. | ||
We make three kinds of fur-box for our sensor system. We want to know which is our best choice. Our experiment result show in the figure 3. </p> | We make three kinds of fur-box for our sensor system. We want to know which is our best choice. Our experiment result show in the figure 3. </p> | ||
− | <p>Then we try to change the value of K<sub>i1</sub> to model different strength of promoter with fur-box in our experiment which show in the figure 4. We want our system to make sense in the high level of Fe<sup>2+</sup>, so we choose the fur-2 system. And we finally set the KI1: | + | <p>Then we try to change the value of K<sub>i1</sub> to model different strength of promoter with fur-box in our experiment which show in the figure 4. We want our system to make sense in the high level of Fe<sup>2+</sup>, so we choose the fur-2 system. And we finally set the KI1:7.4*10<sup>-4</sup>. </p> |
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<p>“How much concentration of the cecropin AD can we produce in our bacteria?”</p> | <p>“How much concentration of the cecropin AD can we produce in our bacteria?”</p> | ||
<p>In order to answer the question, we make the genes in the Pet-28a plasmid. So, we know the N<sub>pla1</sub> and N<sub>pla2</sub> parameters access to literatures which set it 400.</p> | <p>In order to answer the question, we make the genes in the Pet-28a plasmid. So, we know the N<sub>pla1</sub> and N<sub>pla2</sub> parameters access to literatures which set it 400.</p> | ||
− | <p>We try to made our sensor and inverter system work in our bacteria.And we get the value of the K<sub>i2</sub> by the experiment of Mcherry expression. Finally, we set K<sub>i2</sub> at | + | <p>We try to made our sensor and inverter system work in our bacteria.And we get the value of the K<sub>i2</sub> by the experiment of Mcherry expression. Finally, we set K<sub>i2</sub> at 25 to model our system. </p> |
<p>As shown in the figure 6, there is a significant result which tell us the bacteria produce cecropin AD at the concentration of iron with time. </p> | <p>As shown in the figure 6, there is a significant result which tell us the bacteria produce cecropin AD at the concentration of iron with time. </p> | ||
</div> | </div> | ||
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<p>$$V_{death-ironbacteria}=\dfrac {\left[ cecropin\right] }{\left[ cecropin\right] +IC50_{ironbacteria}}\cdot K_{ki}\cdot \left[ ironbacteria\right]$$ </p> | <p>$$V_{death-ironbacteria}=\dfrac {\left[ cecropin\right] }{\left[ cecropin\right] +IC50_{ironbacteria}}\cdot K_{ki}\cdot \left[ ironbacteria\right]$$ </p> | ||
<h2>3.3 Result:</h2> | <h2>3.3 Result:</h2> | ||
− | <p>We conducted a standardized experiment to determine the MIC of cecropin AD. | + | <p>We conducted a standardized experiment to determine the MIC of cecropin AD. We set the MIC:4*10<sup>-5</sup>M. </p> |
− | <p>Then we have plotted the death curve of iron bacteria at different concentrations of the cecropin AD show in the figure | + | <p>Then we have plotted the death curve of iron bacteria at different concentrations of the cecropin AD show in the figure 8. </p> |
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<p>This include the sensor and inverter system and sterilizing system leading to a double inverter and sterilize the iron bacteria. </p> | <p>This include the sensor and inverter system and sterilizing system leading to a double inverter and sterilize the iron bacteria. </p> | ||
<h2>4.2 Result</h2> | <h2>4.2 Result</h2> | ||
− | <p>We plotted the time curve of iron bacteria concentration, iron concentration, and cecropin AD concentration. We focus on the time when the iron bacteria become little so we translate these concentrate to proportion. The result show in the figure | + | <p>We plotted the time curve of iron bacteria concentration, iron concentration, and cecropin AD concentration. We focus on the time when the iron bacteria become little so we translate these concentrate to proportion. The result show in the figure 9. It can be seen from the figure 9 that the bacteria were completely killed after about 9000 minutes.</p> |
− | <p>We want to know the accurate time which our system make sense. We focus on the initial concentration change time curve which show in the figure | + | <p>We want to know the accurate time which our system make sense. We focus on the initial concentration change time curve which show in the figure 10. It can be seen from the figure 10 that the cell death starts from about 75 minutes.</p> |
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− | <p>We finally can determine the time our system need from our model. Our system has a | + | <p>We finally can determine the time our system need from our model. Our system has a 75 minute delay start time. The total work completion time is 9000 minutes. This bacteria can remove rust within seven days.</p> |
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<p>1. QIAGEN, Origins of replication and copy numbers of various plasmids and cosmids In: Growth Of Bacterial Cultures, 2013 - 2017.</p> | <p>1. QIAGEN, Origins of replication and copy numbers of various plasmids and cosmids In: Growth Of Bacterial Cultures, 2013 - 2017.</p> | ||
<p>2. 高朝贤, 郑浩渠, 惠长野,等. 红色荧光蛋白变种mCherry的表达、纯化和应用探讨[J]. 国际生物制品学杂志, 2017, 40(1):31-35.</p> | <p>2. 高朝贤, 郑浩渠, 惠长野,等. 红色荧光蛋白变种mCherry的表达、纯化和应用探讨[J]. 国际生物制品学杂志, 2017, 40(1):31-35.</p> | ||
− | + | <p>3. 高朝贤, 郑浩渠, 惠长野,等. 红色荧光蛋白变种mCherry的表达、纯化和应用探讨[J]. 国际生物制品学杂志, 2017, 40(1):31-35.</p> | |
− | + | <p>4. 张惠展. 基因工程概论[M]. 华东理工大学出版社, 2001.</p> | |
− | + | <p>5. 朱玉贤, 李毅, 郑晓峰. 现代分子生物学[M]. 高等教育出版社, 2013.</p> | |
− | + | <p>6. 戚以政, 夏杰, 王炳武. 生物反应工程[M]. 化学工业出版社, 2009.</p> | |
</div> | </div> |
Revision as of 16:54, 17 October 2018