Team:LCG-UNAM-Mexico/Description
From 2009.igem.org
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Another important point is that the signal for encapsidation is located in the “cos” sites. It means that you only need this region (about 20 pb, but you increase the efficence of transduction with a region of more that 100 pb) to encapsidate a double DNA strand disregarding the sequence in addition to the cos sites. | Another important point is that the signal for encapsidation is located in the “cos” sites. It means that you only need this region (about 20 pb, but you increase the efficence of transduction with a region of more that 100 pb) to encapsidate a double DNA strand disregarding the sequence in addition to the cos sites. | ||
+ | ==='''Main objective'''=== | ||
+ | <br> | ||
- | + | '''The main goal is the construction of a new iGEM vector with the peculiarity of being part of a system for transduction of biobricks and synthetic devices in bacteria.''' | |
- | + | The system starts with a modified bacteriophage P4 genome. This viral vector will be modified to be compatible with iGEM standard for biobrick assembly. Also, because the remotion of non-essential region on its genome and the use of a natural mutant of this phage P4sid1, the capsid will be able to suport up to 25 kbs of synthetic DNA. Another remarkable characteristic that we expect in our system according to litterature, is the ability to function in an inusual host range than includes E.Coli, Klebsiella, Serratia and Rhizobium. | |
+ | Second part of the system is the production under our regulation of these P4 bacteriophages with the synthetic constructions. The idea is to create an E. Coli as a productor strain of this phages that becomes production of P4 only under a stimulus. So you only will need to transform this strain with the viral vector + your construction and the production of the P4 phages may become only when an activation of two main regulators in the system. | ||
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+ | In conclusion we propose a complete, standardized and controllable system for production of P4 bacteriophages than can carry over 25 kbs of synthetic DNA and can transduce an inusual host range of bacteria. Another interesting point is that the relation between bacteria and their bacteriophages is quite rich and dynamic so hacking this system to now control it has been really entertaining. | ||
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+ | As can be imagined, this promises an important and powerful tool in Synthetic Biology with a great potential for expansions and applications. | ||
====System delivery: benefits and perspectives==== | ====System delivery: benefits and perspectives==== | ||
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Revision as of 17:02, 20 October 2009