Team:LCG-UNAM-Mexico/Description
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One of the main motivations for the construction of this delivery system using P4 as the vector is to achieve insertion of devices into cells by transduction as an alternative way from traditional transformation. '''This extends the panorama of synthetic biology to the whole P4 host range, which involves especies of genera such as Rhizobium, Klebsiella, and Serratia besides Enterobacteria like E. coli'''. The delivery of parts into wildtype bacteria could be a pool for innovative applications and properties, such as the following: | One of the main motivations for the construction of this delivery system using P4 as the vector is to achieve insertion of devices into cells by transduction as an alternative way from traditional transformation. '''This extends the panorama of synthetic biology to the whole P4 host range, which involves especies of genera such as Rhizobium, Klebsiella, and Serratia besides Enterobacteria like E. coli'''. The delivery of parts into wildtype bacteria could be a pool for innovative applications and properties, such as the following: | ||
- | <br>1)''' A defense system against another phages for E. Coli delivered by P4 phage. ''' | + | <br>1)[[Team:LCG-UNAM-Mexico/Description#Defense|''' A defense system against another phages for E. Coli delivered by P4 phage. ''']] |
- | The idea we love is '''hacking one system that is harmful''' (if you are a bacterium) | + | The idea we love is '''hacking one system that is harmful''' (if you are a bacterium) '''and using it for your own protection''' against similar systems. |
<br>2) '''Refined phage therapy.''' | <br>2) '''Refined phage therapy.''' | ||
- | In addition to bacterial protection, we propose the use of this system to protect humans. This could be done using phage therapy to transduce DNA into pathogenic bacteria. It would be an advantage in cases where extra control is needed, as in degrading toxins before killing the pathogen and so avoiding further immune response. Another benefit would be response specificity in '''hacking pathogen-specific regulators''' while the system is bypassed in non-hazardous strains. | + | In addition to bacterial protection, we propose the use of this system to protect humans. This could be done using phage therapy to transduce DNA into pathogenic bacteria. It would be an advantage in cases where extra control is needed, as in degrading toxins before killing the pathogen and so avoiding further immune response. Another benefit would be response specificity in '''hacking pathogen-specific regulators''' while '''the system is bypassed in non-hazardous strains'''. |
- | As a first step in this area, we have adapted the kamikaze system to detect pathogenicity instead of phages. The target pathogen is EHEC and EPEC (Enterohemorragic and Enteropathogenic Escherichia coli). P4 will introduce a specific binding site for a pathogenicity-specific regulator LER, which in turn will activate the [[Team:LCG-UNAM-Mexico/Description#Translation process sabotage| kamikaze system]] | + | As a first step in this area, we have adapted the kamikaze system to detect pathogenicity instead of phages. The target pathogen is EHEC and EPEC (Enterohemorragic and Enteropathogenic Escherichia coli). P4 will introduce a specific binding site for a pathogenicity-specific regulator LER, which in turn will activate the [[Team:LCG-UNAM-Mexico/Description#Translation process sabotage| kamikaze system]] at the moment LER activates pathogenic effacement. |
Revision as of 22:47, 20 October 2009