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− | <a href="https://2018.igem.org/Team:NAU-CHINA/ | + | |
− | <img id="icon1" class="guide-icon" src="https://static.igem.org/mediawiki/2018/ | + | <a href="https://2018.igem.org/Team:NAU-CHINA/Composite_Part"> |
+ | <img id="icon1" class="guide-icon" src="https://static.igem.org/mediawiki/2018/0/00/T--NAU-China--pa1.png" /> | ||
</a> | </a> | ||
<a href="https://2018.igem.org/Team:NAU-CHINA/Improve"> | <a href="https://2018.igem.org/Team:NAU-CHINA/Improve"> | ||
− | <img id="icon2" class="guide-icon" src="https://static.igem.org/mediawiki/2018/ | + | <img id="icon2" class="guide-icon" src="https://static.igem.org/mediawiki/2018/8/8e/T--NAU-China--pa2.png" /> |
</a> | </a> | ||
<a href="https://2018.igem.org/Team:NAU-CHINA/Part_Collection"> | <a href="https://2018.igem.org/Team:NAU-CHINA/Part_Collection"> | ||
− | <img id="icon3" class="guide-icon" src="https://static.igem.org/mediawiki/2018/ | + | <img id="icon3" class="guide-icon" src="https://static.igem.org/mediawiki/2018/a/ae/T--NAU-China--pa3.png" /> |
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<p class="top-title"> Parts</p> | <p class="top-title"> Parts</p> | ||
− | <p class="sec-title"> | + | <p class="sec-title"> Basic Parts</p> |
− | </div> | + | </div> |
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<div class="main-content"> | <div class="main-content"> | ||
<div class="textblock"> | <div class="textblock"> | ||
− | <h1>Our Best | + | <h1>Our Best Basic Part:BBa_K2557001</h1> |
− | + | <p>This year, our team has selected a series of recombinases through literature searches and characterized a number of them. Here we present the best characterized recombinase - Bxb1 (BBa_K2557001) as our best basic part for the award.</p> | |
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− | <p> | + | |
<div class="section"> | <div class="section"> | ||
− | <h2> | + | <h2>Background</h2> |
+ | <p>Bxb1, also known as Bxb1 gp35, is an recombinase comeing from Mycobacterium Phage Bxb1 and can bind to specific attB/P sites to catalyze DNA recombination. It helps the phage to integrate its genome into bacterial genome naturally. By constructing the attB/P sites in different directions, Bxb1 gp35 can catalyze the recombination of DNA between their sites, leading to inversion when attB/P are in opposite directions and excision when attB/P are in the same directions. The resulting attL and attR sequences cannot be recognized and bound by integrases alone, so the state after integration is stable. Bxb1 gp35 is widely used to construct combinational logic gate and synthetic biology.</p> | ||
<figure> | <figure> | ||
− | <img src="https://static.igem.org/mediawiki/2018/ | + | <img src="https://static.igem.org/mediawiki/2018/9/95/T--NAU-China--bxb1png.png" width="300"/> |
+ | <figcaption class="_table">Fig. 1 Bxb1 structure homology-model provided by SWISS-MODEL.</figcaption> | ||
</figure> | </figure> | ||
− | + | <div class="divvideo"> | |
− | + | <video src="https://static.igem.org/mediawiki/2018/a/ab/T--NAU-China--bxb1mp4.mp4" controls="controls"> | |
+ | </video> | ||
+ | </div> | ||
</div> | </div> | ||
<div class="section"> | <div class="section"> | ||
− | <h2> | + | <h2>Function In our Genetic Circuit</h2> |
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− | + | ||
<figure> | <figure> | ||
− | <img src="https://static.igem.org/mediawiki/2018/ | + | <img src="https://static.igem.org/mediawiki/2018/9/9e/T--NAU-China--partbxb1anime.gif"> |
</figure> | </figure> | ||
+ | <p>In our genetic circuit, Bxb1 regulated by TetR. When the inhibition released by TEV protease, Bxb1 can bind to specific attB/P sites to catalyze DNA recombination, leading to the expression of RFP.</p> | ||
+ | |||
+ | |||
+ | </div> | ||
+ | |||
+ | <div class="section"> | ||
+ | <h2>Characterization</h2> | ||
+ | <p>Method: Co-transfected with six different numbers of plasmids containing recombinase genes(miniCMV-Bxb1 and miniCMV-TP901) and fixed numbers of plasmids containing corresponding recombinase recognition sites. After 36 hours of plasmid co - transfection, the proportion of fluorescent cells and the average fluorescence intensity of cells were detected by flow cytometry. The experiment was repeated three times.</p> | ||
+ | <p>Result:</p> | ||
<figure> | <figure> | ||
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<img src="https://static.igem.org/mediawiki/2018/f/f4/T--NAU-China--newpart7.jpg"> | <img src="https://static.igem.org/mediawiki/2018/f/f4/T--NAU-China--newpart7.jpg"> | ||
− | <figcaption class="_table">Fig.2 Function verification of reversal efficiency and threshold characteristics of different recombinase in HEK 293 T Cells.<br>(A)Fluorescence microscope observation of HEK 293T undergone different experimental treatments.<br>(B)The statistical chart of average fluorescence intensity of cells shows that the cells with Bxb1 recombinase have a higher fluorescence intensity than those with TP901 recombinase under the same promoter strength and recombinase concentration. However, if the concentration of recombinase is low, there is no significant difference in fluorescence intensity.<br>(C)The statistics of the proportion of fluorescent cells show that the proportion of fluorescent cells has a sudden jump discontinuity between low concentration and high concentration of Bxb1 and TP901 recombinases. Similar results were obtained in all three repetitions.</figcaption> | + | <figcaption class="_table">Fig.2 Function verification of reversal efficiency and threshold characteristics of different recombinase in HEK 293 T Cells.<br>(A)Fluorescence microscope observation of HEK 293T undergone different experimental treatments.<br>(B)The statistical chart of average fluorescence intensity of cells shows that the cells with Bxb1 recombinase have a higher fluorescence intensity than those with TP901 recombinase under the same promoter strength and recombinase concentration. However, if the concentration of recombinase is low, there is no significant difference in fluorescence intensity.<br>(C)The statistics of the proportion of fluorescent cells show that the proportion of fluorescent cells has a sudden jump discontinuity between low concentration and high concentration of Bxb1 and TP901 recombinases. Similar results were obtained in all three repetitions.</figcaption> |
</figure> | </figure> | ||
<p>The results of image B show that the reverse efficiency of Bxb1 recombinase is higher than TP901 recombinase under the same promoter strength and recombinase concentration. However, if the concentration of recombinase is low, there is no significant difference in fluorescence intensity. The results of the image C show that Bxb1 and TP901 recombinases have a threshold property. So, the proportion of fluorescent cells have a jump discontinuity between low concentration and high concentration of recombinase.</p> | <p>The results of image B show that the reverse efficiency of Bxb1 recombinase is higher than TP901 recombinase under the same promoter strength and recombinase concentration. However, if the concentration of recombinase is low, there is no significant difference in fluorescence intensity. The results of the image C show that Bxb1 and TP901 recombinases have a threshold property. So, the proportion of fluorescent cells have a jump discontinuity between low concentration and high concentration of recombinase.</p> | ||
− | + | <p><b>In conclusion, Bxb1 works well in HEK 293T as expected, so we present Bxb1(BBa_K2557001) as our best basic part.</b></p> | |
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</div> | </div> | ||
</div> | </div> | ||
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<div class="textblock"> | <div class="textblock"> | ||
− | + | <h1>Basic Part List</h1> | |
− | + | </div></div> | |
− | + | <table style='width: 75%; margin: 0px 14% 20px 14%;'> | |
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<thead> | <thead> | ||
<tr> | <tr> | ||
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<tbody> | <tbody> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557001">BBa_K2557001</a></td> |
− | <td align='center'> | + | <td align='center'>Coding</td> |
− | <td align='center'> | + | <td align='center'>Bxb1 recombinase</td> |
− | <td align='center'> | + | <td align='center'>1565</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557000">BBa_K2557000</a></td> |
− | <td align='center'> | + | <td align='center'>Coding</td> |
− | <td align='center'> | + | <td align='center'>Anti-GFP-mnotch-TEV protease-NLS</td> |
− | <td align='center'> | + | <td align='center'>2409</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557003">BBa_K2557003</a></td> |
− | <td align='center'> | + | <td align='center'>DNA</td> |
− | <td align='center'> | + | <td align='center'>Bxb1 attB-Bxb1 attP</td> |
− | <td align='center'> | + | <td align='center'>200</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557004">BBa_K2557004</a></td> |
− | <td align='center'> | + | <td align='center'>Coding</td> |
− | <td align='center'> | + | <td align='center'>PhiC31 recombinase</td> |
− | <td align='center'> | + | <td align='center'>1881</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557006">BBa_K2557006</a></td> |
− | <td align='center'> | + | <td align='center'>DNA</td> |
− | <td align='center'> | + | <td align='center'>PhiC31 attB-PhiC31 attP</td> |
− | <td align='center'> | + | <td align='center'>204</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557007">BBa_K2557007</a></td> |
− | <td align='center'> | + | <td align='center'>Coding</td> |
− | <td align='center'> | + | <td align='center'>TP901 recombinase</td> |
− | <td align='center'> | + | <td align='center'>1604</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557009">BBa_K2557009</a></td> |
− | <td align='center'> | + | <td align='center'>DNA</td> |
− | <td align='center'> | + | <td align='center'>TP901 attB-TP901 attP</td> |
− | <td align='center'> | + | <td align='center'>210</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557032">BBa_K2557032</a></td> |
− | <td align='center'> | + | <td align='center'>promoter</td> |
− | <td align='center'> | + | <td align='center'>miniCMV promoter</td> |
− | <td align='center'> | + | <td align='center'>38</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557033">BBa_K2557033</a></td> |
− | <td align='center'> | + | <td align='center'>promoter</td> |
− | <td align='center'> | + | <td align='center'>EF1α promoter</td> |
− | <td align='center'> | + | <td align='center'>212</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557034">BBa_K2557034</a></td> |
− | <td align='center'> | + | <td align='center'>promoter</td> |
− | <td align='center'> | + | <td align='center'>Ubc promoter</td> |
− | <td align='center'> | + | <td align='center'>400</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557035">BBa_K2557035</a></td> |
− | <td align='center'> | + | <td align='center'>Reporter</td> |
− | <td align='center'> | + | <td align='center'>TagRFP</td> |
− | <td align='center'> | + | <td align='center'>711</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557036">BBa_K2557036</a></td> |
− | <td align='center'> | + | <td align='center'>Reporter</td> |
− | <td align='center'> | + | <td align='center'>mCherry</td> |
− | <td align='center'> | + | <td align='center'>708</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557037">BBa_K2557037</a></td> |
− | <td align='center'> | + | <td align='center'>Reporter</td> |
− | <td align='center'> | + | <td align='center'>EGFP</td> |
− | <td align='center'> | + | <td align='center'>738</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557038">BBa_K2557038</a></td> |
− | <td align='center'> | + | <td align='center'>DNA</td> |
− | <td align='center'> | + | <td align='center'>TetO</td> |
− | <td align='center'> | + | <td align='center'>271</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557041">BBa_K2557041</a></td> |
− | <td align='center'> | + | <td align='center'>DNA</td> |
− | <td align='center'> | + | <td align='center'>Bxb1 attB</td> |
− | <td align='center'> | + | <td align='center'>96</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557042">BBa_K2557042</a></td> |
− | <td align='center'> | + | <td align='center'>DNA</td> |
− | <td align='center'> | + | <td align='center'>Bxb1 attP</td> |
− | <td align='center'> | + | <td align='center'>112</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557043">BBa_K2557043</a></td> |
− | <td align='center'> | + | <td align='center'>DNA</td> |
− | <td align='center'> | + | <td align='center'>PhiC31 attB</td> |
− | <td align='center'> | + | <td align='center'>45</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557044">BBa_K2557044</a></td> |
− | <td align='center'> | + | <td align='center'>DNA</td> |
− | <td align='center'> | + | <td align='center'>PhiC31 attP</td> |
− | <td align='center'> | + | <td align='center'>135</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557045">BBa_K2557045</a></td> |
− | <td align='center'> | + | <td align='center'>DNA</td> |
− | <td align='center'> | + | <td align='center'>TP901 attB</td> |
− | <td align='center'> | + | <td align='center'>113</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557046">BBa_K2557046</a></td> |
− | <td align='center'> | + | <td align='center'>DNA</td> |
− | <td align='center'> | + | <td align='center'>TP901 attP</td> |
− | <td align='center'> | + | <td align='center'>112</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557047">BBa_K2557047</a></td> |
− | <td align='center'> | + | <td align='center'>Coding</td> |
− | <td align='center'> | + | <td align='center'>Bxb1-RDF</td> |
− | <td align='center'> | + | <td align='center'>2345</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557048">BBa_K2557048</a></td> |
− | <td align='center'> | + | <td align='center'>Coding</td> |
− | <td align='center'> | + | <td align='center'>PhiC31-RDF</td> |
− | <td align='center'> | + | <td align='center'>2630</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557049">BBa_K2557049</a></td> |
− | <td align='center'> | + | <td align='center'>Coding</td> |
− | <td align='center'> | + | <td align='center'>TP901-RDF</td> |
− | <td align='center'> | + | <td align='center'>1796</td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
− | <td align='center'><a href="http://parts.igem.org/Part: | + | <td align='center'><a href="http://parts.igem.org/Part:BBa_K2557050">BBa_K2557050</a></td> |
− | <td align='center'> | + | <td align='center'>Coding</td> |
− | <td align='center'> | + | <td align='center'>TetR with TEV cleavage site</td> |
− | <td align='center'> | + | <td align='center'>651</td> |
</tr> | </tr> | ||
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</tbody> | </tbody> | ||
</table> | </table> | ||
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<p><a href="http://parts.igem.org/cgi/partsdb/pgroup.cgi?pgroup=iGEM2018&group=NAU-CHINA">Click here to view Part List</a></p> | <p><a href="http://parts.igem.org/cgi/partsdb/pgroup.cgi?pgroup=iGEM2018&group=NAU-CHINA">Click here to view Part List</a></p> | ||
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</html> | </html> | ||
{{NAU-CHINA/footer}} | {{NAU-CHINA/footer}} |
Revision as of 03:21, 18 October 2018
Parts
Basic Parts
Our Best Basic Part:BBa_K2557001
This year, our team has selected a series of recombinases through literature searches and characterized a number of them. Here we present the best characterized recombinase - Bxb1 (BBa_K2557001) as our best basic part for the award.
Background
Bxb1, also known as Bxb1 gp35, is an recombinase comeing from Mycobacterium Phage Bxb1 and can bind to specific attB/P sites to catalyze DNA recombination. It helps the phage to integrate its genome into bacterial genome naturally. By constructing the attB/P sites in different directions, Bxb1 gp35 can catalyze the recombination of DNA between their sites, leading to inversion when attB/P are in opposite directions and excision when attB/P are in the same directions. The resulting attL and attR sequences cannot be recognized and bound by integrases alone, so the state after integration is stable. Bxb1 gp35 is widely used to construct combinational logic gate and synthetic biology.
Function In our Genetic Circuit
In our genetic circuit, Bxb1 regulated by TetR. When the inhibition released by TEV protease, Bxb1 can bind to specific attB/P sites to catalyze DNA recombination, leading to the expression of RFP.
Characterization
Method: Co-transfected with six different numbers of plasmids containing recombinase genes(miniCMV-Bxb1 and miniCMV-TP901) and fixed numbers of plasmids containing corresponding recombinase recognition sites. After 36 hours of plasmid co - transfection, the proportion of fluorescent cells and the average fluorescence intensity of cells were detected by flow cytometry. The experiment was repeated three times.
Result:
The results of image B show that the reverse efficiency of Bxb1 recombinase is higher than TP901 recombinase under the same promoter strength and recombinase concentration. However, if the concentration of recombinase is low, there is no significant difference in fluorescence intensity. The results of the image C show that Bxb1 and TP901 recombinases have a threshold property. So, the proportion of fluorescent cells have a jump discontinuity between low concentration and high concentration of recombinase.
In conclusion, Bxb1 works well in HEK 293T as expected, so we present Bxb1(BBa_K2557001) as our best basic part.
Basic Part List
Name | Type | Description | Length |
---|---|---|---|
BBa_K2557001 | Coding | Bxb1 recombinase | 1565 |
BBa_K2557000 | Coding | Anti-GFP-mnotch-TEV protease-NLS | 2409 |
BBa_K2557003 | DNA | Bxb1 attB-Bxb1 attP | 200 |
BBa_K2557004 | Coding | PhiC31 recombinase | 1881 |
BBa_K2557006 | DNA | PhiC31 attB-PhiC31 attP | 204 |
BBa_K2557007 | Coding | TP901 recombinase | 1604 |
BBa_K2557009 | DNA | TP901 attB-TP901 attP | 210 |
BBa_K2557032 | promoter | miniCMV promoter | 38 |
BBa_K2557033 | promoter | EF1α promoter | 212 |
BBa_K2557034 | promoter | Ubc promoter | 400 |
BBa_K2557035 | Reporter | TagRFP | 711 |
BBa_K2557036 | Reporter | mCherry | 708 |
BBa_K2557037 | Reporter | EGFP | 738 |
BBa_K2557038 | DNA | TetO | 271 |
BBa_K2557041 | DNA | Bxb1 attB | 96 |
BBa_K2557042 | DNA | Bxb1 attP | 112 |
BBa_K2557043 | DNA | PhiC31 attB | 45 |
BBa_K2557044 | DNA | PhiC31 attP | 135 |
BBa_K2557045 | DNA | TP901 attB | 113 |
BBa_K2557046 | DNA | TP901 attP | 112 |
BBa_K2557047 | Coding | Bxb1-RDF | 2345 |
BBa_K2557048 | Coding | PhiC31-RDF | 2630 |
BBa_K2557049 | Coding | TP901-RDF | 1796 |
BBa_K2557050 | Coding | TetR with TEV cleavage site | 651 |