Team:EPF-Lausanne/Our Project/Assembly

From 2011.igem.org

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The induction curves show that RFP expression increases with addition of ATC. In the absence of ATC, cells express about 2500 normalized RFUs (relative fluorescence units) when they reach a plateau, whereas at the highest concentrations of ATC we observe 25'000 normalized RFUs. There is a 10x difference between normal medium (without ATC) and addition of ATC, showing that our first readout system is sensitive to ATC concentration. Moreover, expression of RFP in cells without ATC is 10-fold lower than the values obtained for [https://2011.igem.org/wiki/index.php?title=Team:EPF-Lausanne/Our_Project/Assembly/Ptet Ptet characterization] alone.
The induction curves show that RFP expression increases with addition of ATC. In the absence of ATC, cells express about 2500 normalized RFUs (relative fluorescence units) when they reach a plateau, whereas at the highest concentrations of ATC we observe 25'000 normalized RFUs. There is a 10x difference between normal medium (without ATC) and addition of ATC, showing that our first readout system is sensitive to ATC concentration. Moreover, expression of RFP in cells without ATC is 10-fold lower than the values obtained for [https://2011.igem.org/wiki/index.php?title=Team:EPF-Lausanne/Our_Project/Assembly/Ptet Ptet characterization] alone.
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We can reasonably assume that this system can actually be used for in vivo screening: TetR mutants that would not recognize the consensus Ptet sequence would yield a lot more RFP expression than other mutants recognizing Ptet.
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We can reasonably assume that this system can be used for in vivo screening: TetR mutants that are not capable of recognizing the consensus Ptet sequence will yield more RFP expression than other mutants that can still recognize Ptet.
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[[File:EPFL_Nadine-exp3-doseresponse.png|600px]]
[[File:EPFL_Nadine-exp3-doseresponse.png|600px]]
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By looking at the dose-response graph, we can see a significant increase between 0 and 200 ng/microL ATC; then the RFUs are quite stable. The graph shows that the TetR-Ptet interaction has a strong impact on RFP expression. The highest RFUs measured here correspond to the levels of the Ptet-RFP construct alone (without the TetR plasmid), showing that we can get a complete TetR inactivation in our experiment.
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By looking at the dose-response graph, we can see a significant increase between 0 and 200 ng/microL ATC; then the RFU values begin to plateau. The graph shows that the TetR-Ptet interaction has a strong impact on RFP expression. The highest RFUs measured here correspond to the levels of the Ptet-RFP construct alone (in the absence of the the TetR plasmid), showing that we can obtain complete TetR suppression in our experiments.
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=== TetR mutants characterization ===
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=== TetR mutant characterization ===
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With the wild-type TetR in our system, RFP is repressed because wt-TetR binds to Ptet. However, a mutant that would recognize a completely different sequence as Ptet would be unable to repress RFP, as you can see in the illustartions below:
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With the wild-type TetR in our system, RFP is repressed because wt-TetR binds to Ptet. However, mutants can potentially recognize a different promoter sequence and Ptet would be unable to repress RFP expression, as seen in the illustrations below:
Gene expression with wild-type TetR:
Gene expression with wild-type TetR:
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=== Description ===
=== Description ===
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Our second system contains LacI in addition to TetR and RFP. TetR is still induced by a constitutive promoter, then LacI is under Ptet regulation and RFP is under Plac regulation. LacI plays here the role of an inverter, so that we can measure directly TetR-Ptet interactions: if TetR binds to Ptet, LacI is not expressed, so RFP is not repressed and is instead expressed. Here, the strongest a TetR mutant binds to Ptet, the highest RFP intensity we will get.
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Our second system contains LacI in addition to TetR and RFP. TetR is still induced by a constitutive promoter, then LacI is under Ptet regulation and RFP is under Plac regulation. LacI plays the role of an inverter, so that we can measure directly TetR-Ptet interactions: if TetR binds to Ptet, LacI is not expressed, so RFP is not repressed and is instead expressed. Here, TetR mutants with a higher binding affinity for Ptet will result in higher levels of RFP expression.
[[File:EPFL_Summary_TetR_LacI_RFP.jpg|700px]]
[[File:EPFL_Summary_TetR_LacI_RFP.jpg|700px]]
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Here also we have a two-plasmid system; TetR and LacI are placed on the pSB3K1 Pconst-TetR Ptet-LacI plasmid whereas RFP is on the J61002 Plac-RFP plasmid. You can find more informations about these plasmids on the [https://2011.igem.org/wiki/index.php?title=Team:EPF-Lausanne/Our_Project/Assembly/Assembly_details plasmids details] page.
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Here also we have a two-plasmid system; TetR and LacI are placed on the pSB3K1 Pconst-TetR Ptet-LacI plasmid whereas RFP is on the J61002 Plac-RFP plasmid. You can find more information about these plasmids on the [https://2011.igem.org/wiki/index.php?title=Team:EPF-Lausanne/Our_Project/Assembly/Assembly_details plasmids details] page.

Revision as of 08:48, 21 September 2011