Team:LCG-UNAM-Mexico/Description
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+ | =='''Complete Project Description'''== | ||
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+ | ===Model Validation=== | ||
+ | We expect the Burst-Size to be significantly reduced. An optimal result would be a Burst-Size of 0. Implementing a [[Team:LCG-UNAM-Mexico:BSD |sensitivity analysis]] we found that the [[Team:LCG-UNAM-Mexico:BSD|burst size distribution]] is dependent on the rate of ribosome inactivation by colicin E3. The [[Team:LCG-UNAM-Mexico:BSD|wild type Burst Size Distribution]] has mean 176 and standard deviation 102. This results are consistent with [[Team:LCG-UNAM-Mexico:BSD|existing experimental data]], the reported values for the burst size present a wide variation. | ||
+ | The [[Team:LCG-UNAM-Mexico:CA|Celluar Automaton]] and the system of [[Team:LCG-UNAM-Mexico:odes|Delay Differential Equations]] generate growth curves that can be compared with those obtained experimentally.<br> | ||
+ | Results generated by the [[Team:LCG-UNAM-Mexico:CA| Cellular Automaton]] are in good agreement with those obtained experimentally.<br> | ||
+ | <br> | ||
+ | Our [[Team:LCG-UNAM-Mexico:Molecular model|Molecular Model]] has proved to be a reliable tool for sampling molecular distributions in order to make sensitivity analysis and to assemble more complex models as we did with our Cellular Automaton.<br> | ||
+ | <br><br> | ||
+ | See [https://2009.igem.org/Team:LCG-UNAM-Mexico/Modelling Modelling Section] for detailed information. | ||
+ | <br><br><br> | ||
==='''Defense system: benefits and perspectives'''=== | ==='''Defense system: benefits and perspectives'''=== | ||
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One of the ideal situations in synthetic biology is the "friendly get-along" of the latter and biological machines for the benefit of humans, as projected with medicine production from genetic circuits. We propose that activation of such circuits could rely on the usage of bacteriophages and their population equilibrium with bacteria. While a bacterial population could tolerate a phage infection with our alarm system and hence initiate extra responses (like medicine production), an overdose of the initial phage activation signal, instead of killing individuals by icreasing the production of medicine, could cause the extintion of the biological machine inside the body. This would bring the individual to an initial pre-medication state. | One of the ideal situations in synthetic biology is the "friendly get-along" of the latter and biological machines for the benefit of humans, as projected with medicine production from genetic circuits. We propose that activation of such circuits could rely on the usage of bacteriophages and their population equilibrium with bacteria. While a bacterial population could tolerate a phage infection with our alarm system and hence initiate extra responses (like medicine production), an overdose of the initial phage activation signal, instead of killing individuals by icreasing the production of medicine, could cause the extintion of the biological machine inside the body. This would bring the individual to an initial pre-medication state. | ||
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Revision as of 01:27, 22 October 2009
Contents |
Complete Project Description