Team:LCG-UNAM-Mexico/Description
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==='''Main objective'''=== | ==='''Main objective'''=== | ||
- | '''The main goal of the defense device is to significantly reduce the burst size in order to allow bacteria to survive a phage infection process.''' To achieve this, we designed a kamikaze system that will prevent the | + | '''The main goal of the defense device is to significantly reduce the burst size in order to allow bacteria to survive a phage infection process.''' To achieve this, we designed a '''[[Team:LCG-UNAM-Mexico/Description#Translation process sabotage| kamikaze system]]''' that will prevent the spread of phage infections. Pgahes T7 and T3 will infect protected E. Coli which will start producing toxins that deactivate ribosomes. The result: no translation machinery, no phages production and heroic bacterial suicide. <br><br> |
- | + | Initially, a viral infection is a process that takes place inside and individual but the real consequences of the infection become important at the population scale. In order to efficiently and accurately simulate the behaviour of the defence device we need to implement two different kinds of approaches: an individual-based simulation and a population simulation, and then integrate them in a Multi-Scale Model.<br><br> | |
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- | In order to simulate the spatial dynamics of the | + | In order to simulate the spatial dynamics of the defence device we designed and implemented a [[Team:LCG-UNAM-Mexico:CA|Celluar Automaton (CA).]] Using the CA we can approach several problems at the same time: E. Coli movement and duplication, AHL and phage diffusion and the infection process.<br><br> |
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+ | The detailed parts of the defense subsystem are the following: | ||
Revision as of 00:24, 22 October 2009