Team:Paris Bettencourt/Designs/List

From 2011.igem.org

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   <td style="width:200px; text-align:center"><a href="https://2011.igem.org/Team:Paris_Bettencourt/GFPLac_diffusion"><img style="width:150px" src="https://static.igem.org/mediawiki/2011/2/2b/Question_mark_button.png"></a>
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   <td style="width:200px; text-align:center"><a href="https://2011.igem.org/Team:Paris_Bettencourt/GFPLac_diffusion"><img style="width:150px" src="https://static.igem.org/mediawiki/2011/d/d0/YFP_concentration_button.png"></a>
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   <td><b><a href="https://2011.igem.org/Team:Paris_Bettencourt/GFPLac_diffusion">YFP concentration</a></b> This design relies on a TetO-array which allow us to concentrate YFP-TetR fusion proteins.
   <td><b><a href="https://2011.igem.org/Team:Paris_Bettencourt/GFPLac_diffusion">YFP concentration</a></b> This design relies on a TetO-array which allow us to concentrate YFP-TetR fusion proteins.

Revision as of 10:45, 17 September 2011

Team IGEM Paris 2011

Design List

YFP concentration This design relies on a TetO-array which allow us to concentrate YFP-TetR fusion proteins.
T7 RNA polymerase diffusion In this design, we introduce use the T7 polymerase both as the transfer molecule and as the auto-amplification system.
tRNA amber diffusion The tRNA amber is the smallest molecule we are trying to get pass the nanotubes.
ComS diffusion We took advantage of a switch already existing in B.Subtilis (the ComK/ComS switch) and tried to see if we could toggle it from one state to the other using molecules diffusing through the nanotubes.