Team:LCG-UNAM-Mexico/Experiments/Design
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<p><span class="calHeader"><a name="Devices"></a>System</span></p> | <p><span class="calHeader"><a name="Devices"></a>System</span></p> | ||
- | <p align="justify"> First of all, we needed a system that could <span dir="ltr" id=":1s">cause a change in | + | <p align="justify"> First of all, we needed a system that could <span dir="ltr" id=":1s">cause a change in a medium's conductivity</span>. An extrusion pump seemed to be the best scheme to achieve this. Once this was devised, we needed a mechanism to regulate the system. <span dir="ltr" id=":1s">We decided to use a negative regulator because it's the only way to transcriptionally regulate the expression of a gene in a definitive way.</span></p> |
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We had to be able to restart our system, so we could add a signal at anytime. This could be accomplished with an induction signal that disappears rapidly after its involvement. The need of a link between the inductor signal and the repressor, lead us to include a little regulation cascade. This cascade allows us to add new steps which might increase our system’s complexity.<br><br> | We had to be able to restart our system, so we could add a signal at anytime. This could be accomplished with an induction signal that disappears rapidly after its involvement. The need of a link between the inductor signal and the repressor, lead us to include a little regulation cascade. This cascade allows us to add new steps which might increase our system’s complexity.<br><br> |
Revision as of 22:44, 29 October 2008
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System First of all, we needed a system that could cause a change in a medium's conductivity. An extrusion pump seemed to be the best scheme to achieve this. Once this was devised, we needed a mechanism to regulate the system. We decided to use a negative regulator because it's the only way to transcriptionally regulate the expression of a gene in a definitive way.
The components selected to fulfill the system requirements are enlisted in the next table: * All the references for this table are included at the end of the design section.
Primer design
Devices
Device BBa_K119009: The extrusion pump.
Devices BBa_K119010/BBa_K119011: The regulatory device In order to control the RcnA activity this device includes the gene encoding LuxR under the regulation TetR constitutive promoter followed by cI, which will repress RcnA in the prescence of AHL:LuxR. The last component of the device is the gene encoding AiiA. In BBa_K119010 lacZ promoter is upstream of AiiA, while BBa_K119011 carries a mutated version of it. The plasmid carrying this device will be PRK415.
We intend to measure variations in resistivity in a medium with a bacteria culture. This is achieved using an electronic system. First of all we need a dispositive capable of detecting small resistivity variations. To achieve this, a resistive array in a Wheatstone bridge configuration is implemented. To process the signal a Digital-Analogical capture card with an USB communication interface will be used. This will allow analogical data acquisition and its transfer to a computer on a binary format.
References
2.-Rodrigue A. Et al. (2005) "Identification of rcnA (yohM), a Nickel and Cobalt Resistance Gene in Esherichia coli" 3.-Kovach et al.(1994), "pBBR1MCS: a broad-host-range cloning vector". 4.-Parsek MR,(1999) Acyl homoserine-lactone quorum-sensing signal generation.Apr 13;96(8):4360-5. 5.-http://partsregistry.org/Part:BBa_I729006 6.-Whiteheada N.A., Barnada A.M.L., Slaterra H.(2001) "Quorum-sensing in Gram-negative bacteria" . 16.- (1998). N.T. Keen, S. Tamaki, D. Kobayashi, and D. Trollinger.
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