Team:Tokyo Tech
From 2013.igem.org
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<h2><p>In our programing of artificial genetic circuit, <i>E. ninja</i> heads the cast. In response to <i>E. civilian</i> signal or <i>E. samurai</i> signal, <i>E. ninja</i> changes its state: “Mimic state” or “Attack state”. The circuit of <i>E. ninja</i> contains a bi-stable switch part and a signal dependent switching part. We decided to use C6-AHL and C12-AHL as the signals. The crosstalk between these two signals is well known as a significant problem in synthetic biology. To realize an accurate switching, by network engineering, we designed the circumvention of the crosstalk that occurs in bacterial cell-cell communication system (Fig. 3). | <h2><p>In our programing of artificial genetic circuit, <i>E. ninja</i> heads the cast. In response to <i>E. civilian</i> signal or <i>E. samurai</i> signal, <i>E. ninja</i> changes its state: “Mimic state” or “Attack state”. The circuit of <i>E. ninja</i> contains a bi-stable switch part and a signal dependent switching part. We decided to use C6-AHL and C12-AHL as the signals. The crosstalk between these two signals is well known as a significant problem in synthetic biology. To realize an accurate switching, by network engineering, we designed the circumvention of the crosstalk that occurs in bacterial cell-cell communication system (Fig. 3). | ||
<div align="right"><a href="https://2013.igem.org/Team:Tokyo_Tech/Project/Ninja_State_Switching">(go to State Changing page)</a></div> | <div align="right"><a href="https://2013.igem.org/Team:Tokyo_Tech/Project/Ninja_State_Switching">(go to State Changing page)</a></div> | ||
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+ | <div align="center"><a href="https://2013.igem.org/Team:Tokyo_Tech/Experiment/Crosstalk_Circumvention_Assay"><img src="https://static.igem.org/mediawiki/2013/6/6f/Titech2013_home_Fig3_crosstalk_assay.png" width="120" height="200"></a></div><br> | ||
+ | <h4>[Fig. 4. Result of our wet experiment for the circumvention of the crosstalk]<br>The level of GFP expression in cells where TetR is active is clearly lower than when TetR is inhibited. Even with activated LasR, <i>lux/tet</i> hybrid promoter is repressed by TetR precisely. This result suggest our | ||
+ | network will circumvent the crosstalk by the activated LasR. <div align="right"><a href="https://2013.igem.org/Team:Tokyo_Tech/Experiment/Crosstalk_Circumvention_Assay">(see more)</a></div> | ||
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Revision as of 16:53, 26 September 2013