Team:Tokyo-NoKoGen/photocontrol
From 2011.igem.org
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- | <td height= | + | <td height=5455 colspan=2><p class="style43 f-fp">What we need to put in mind as a consideration is – what do we do when we fail to collect some of the E. coli? To solve the problem, we have decided to introduce lysis genes in to the E. coli. The whole procedure for collecting heavy metals from contaminated water can be done at night in the dark. The collection of heavy metals and the E. coli should be finished by the time the sun comes out. Lysis genes will be turned on by red light, leading to the death of E. coli that has leaked out from phototaxis or aggregation (Fig.3). By introducing lysis as a consideration for biosafety, we can avoid biohazard.</p> |
<p class="style43"> </p> | <p class="style43"> </p> | ||
<p class="style43"><img src="https://static.igem.org/mediawiki/2011/0/0e/Phototaxisfig3.jpg" border=0 width=416 height=271 alt="phototaxisfig3" style="vertical-align:baseline"></p> | <p class="style43"><img src="https://static.igem.org/mediawiki/2011/0/0e/Phototaxisfig3.jpg" border=0 width=416 height=271 alt="phototaxisfig3" style="vertical-align:baseline"></p> | ||
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<p class="style55"> </p> | <p class="style55"> </p> | ||
<p class="style55"><span class="style53">2</span><span class="style45">-</span><span class="style53">2. How it works</span></p> | <p class="style55"><span class="style53">2</span><span class="style45">-</span><span class="style53">2. How it works</span></p> | ||
- | <p class="style59"><img src="https://static.igem.org/mediawiki/2011/2/25/Phototaxisfig7. | + | <p class="style59"><img src="https://static.igem.org/mediawiki/2011/2/25/Phototaxisfig7.jp" border=0 width=458 height=334 alt="phototaxisfig7" style="vertical-align:baseline"></p> |
<p class="style59"> </p> | <p class="style59"> </p> | ||
<p class="style59"><strong><span class="style53">2-3. Evaluation</span></strong></p> | <p class="style59"><strong><span class="style53">2-3. Evaluation</span></strong></p> | ||
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<p class="style61">4. Results&Discussion</p> | <p class="style61">4. Results&Discussion</p> | ||
<p class="style61">4-1. Phototaxis</p> | <p class="style61">4-1. Phototaxis</p> | ||
- | <p class=" | + | <p class="style88"><span class="style85">T</span>he results of growing E. coli with and without the phototaxis genes under dark and light conditions for 21 h at 37 <span class="style85">˚</span>C are shown in Fiure 10. The drawn circles on the plate around the colony represents the size when it was first plated. All colonies under all conditions grew larger out of the circle, and unfortunately no difference could be observed. This might be due to the fact that we used fluorescence light instead of only blue light, and the phototaxis expression might not have been induced well enough. </p> |
- | + | <p class="style59"><img src="https://static.igem.org/mediawiki/2011/4/4a/Phototaxisfig10.jpg" border=0 width=604 height=294 alt="phototaxisfig10a" style="vertical-align:baseline"></p> | |
- | <p class="style59"> | + | |
<p class="style59"> </p> | <p class="style59"> </p> | ||
<p class="style55"><span class="style53">4-2. Aggregation</span></p> | <p class="style55"><span class="style53">4-2. Aggregation</span></p> | ||
- | <p class="style55"><img src=" | + | <p class="style55"><img src="https://static.igem.org/mediawiki/2011/b/b2/Phototaxisfig11.jpg" border=0 width=469 height=280 alt="phototaxisfig11a" style="vertical-align:baseline"></p> |
- | <p class="style59">This is the result of antigen43 expression (fig. | + | <p class="style59">This is the result of antigen43 expression (fig.7).</p> |
<p class="style59">The red and orange line represents growth curve of cells containing Antigen43 under PLlacO1, and the green and the blue lines represents growth curve of cells containing no Antigen43 gene. There is a significance difference between cells with and without the aggregation proteins, as the OD595 went down just went down to a third within an hour. The OD595 of the cells for control remained stable. However, we could not see the difference between the IPTG induced cells and non-induced cells. This data could suggest that the expression of Antigen43 is not repressed well enough, and is leaking even without being induced. It might also indicate that aggregation can even happen with a small expression.</p> | <p class="style59">The red and orange line represents growth curve of cells containing Antigen43 under PLlacO1, and the green and the blue lines represents growth curve of cells containing no Antigen43 gene. There is a significance difference between cells with and without the aggregation proteins, as the OD595 went down just went down to a third within an hour. The OD595 of the cells for control remained stable. However, we could not see the difference between the IPTG induced cells and non-induced cells. This data could suggest that the expression of Antigen43 is not repressed well enough, and is leaking even without being induced. It might also indicate that aggregation can even happen with a small expression.</p> | ||
<p class="style59"> </p> | <p class="style59"> </p> | ||
<p class="style55"><span class="style53">4-3. Lysis</span></p> | <p class="style55"><span class="style53">4-3. Lysis</span></p> | ||
- | <p class="style59"><img src=" | + | <p class="style59"><img src="https://static.igem.org/mediawiki/2011/a/a3/Phototaxisfig12.jpg" border=0 width=477 height=308 alt="phototaxisfig12a" style="vertical-align:baseline"></p> |
- | <p class="style59">This is the result of comparison of lysis gene expression with and without antiholin (fig. | + | <p class="style59">This is the result of comparison of lysis gene expression with and without antiholin (fig.8). The yellow line represents control, vector without lysis gene. The blue line shows lysis gene with antiholin and the red line shows lysis gene without antiholin. As you can see, both blue and red line show lower OD660 than the control, indicating that there might be a leakage of lysis gene expression. However system with antiholin kept a higher OD660 than the system without antiholin. Therefore, we concluded that the inducible lysis system consisting of T4 endolysin and holin, functions better with the presence of antiholn.</p> |
- | <p class="style59"><img src=" | + | <p class="style59"><img src="https://static.igem.org/mediawiki/2011/f/fe/Phototaxisfig13.jpg" border=0 width=430 height=314 alt="phototaxisfig13" style="vertical-align:baseline"></p> |
- | <p class="style59">This is the result of lysis gene expression with antiholin, induced by IPTG at stationary phase | + | <p class="style59">This is the result of lysis gene expression with antiholin, induced by IPTG at stationary phase. Both of these cultivation curves indicate E. coli with lysis genes with antiholin. IPTG was not added to the yellow culture, and IPTG (f.c. 3mM) was added to the blue culture. Within 2 hours after addition of IPTG, the OD660 went down by 80%, indicating that the lysis genes were successfully induced by IPTG. </p> |
<p class="style59"> </p> | <p class="style59"> </p> | ||
<p class="style59"> </p> | <p class="style59"> </p> | ||
<p class="style61">5. Summary</p> | <p class="style61">5. Summary</p> | ||
- | <p class=" | + | <p class="style84"><span class="style86">Using light to control E. coli makes our system very easy and efficient, we do not need to add and waste chemicals to control E. coli, bu</span><span class="style87">t just need to shine a certain strength of light at them. We shine blue light at them when we want them to gather around somewhere, or when we want them to aggregate and sink down, or shine red light when we want to get rid of the E. coli to lyse. Unfortunately we could not see a clear result in phototaxis expression, but if we can improve its experimenting condition such as specifying the light for induction, or finding a way to see the change in size of the colony on plate, we might be able to confirm it next time, and apply it to our metal ion collecting system. However, we were still able to confirm genetic expression of lysis and aggregation by using an inducible lac promoter, so we expect them to function when we substitute them to a light sensitive promoter too. Using light to control E. coli that has collected toxic compounds from the environment to make it move, to aggregate, and lyse, is an ideal, efficient and also an environmentally friendly way for collection in our metal ion collecting system. </span></p> |
- | <p class=" | + | <p class="style61"> </p> |
<p class="style55"> </p> | <p class="style55"> </p> | ||
<p class="style61">6. Reference</p> | <p class="style61">6. Reference</p> | ||
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<p class="style59 f-lp">[6] Engebrechi and Silverman (1984) Identification of genes and gene products necessary for bacterial bioluminescence. <em>Proc. Natl. Acad. Sci. USA</em>., 81 (13) 4154-4158.</p> | <p class="style59 f-lp">[6] Engebrechi and Silverman (1984) Identification of genes and gene products necessary for bacterial bioluminescence. <em>Proc. Natl. Acad. Sci. USA</em>., 81 (13) 4154-4158.</p> | ||
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Revision as of 11:11, 5 October 2011
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Tokyo-NokoGen 2011 Department of Biotechnology and Life Science, Tokyo University of Agriculture and Technology |
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