Team:ETH Zurich
From 2013.igem.org
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<li><b><br>The Model</b><br><br>As our bio-game is based on processing the OHHL concentration in the non-mine colonies, the diffusion of OHHL in the agar is vital to the system. The diffusion was modeled by carrying out simulations to determine the time and distance of diffusion. In addition to OHHL diffusion, we modeled synthesis, regulation and degradation reactions of the proteins involved in our genetic circuits. To account for both processes: diffusion and reactions; we developed a spatio-temporal model in two dimensions comprised by three modules: mines, receivers, and the agar plate. Finite element methods were used to solve the system of partial differential equations (PDEs). Our model turned out to be very valuable in the circuit refinement and the design of experiments. Moreover, we continually improve out model by incorporating parameters from our own experimental data. | <li><b><br>The Model</b><br><br>As our bio-game is based on processing the OHHL concentration in the non-mine colonies, the diffusion of OHHL in the agar is vital to the system. The diffusion was modeled by carrying out simulations to determine the time and distance of diffusion. In addition to OHHL diffusion, we modeled synthesis, regulation and degradation reactions of the proteins involved in our genetic circuits. To account for both processes: diffusion and reactions; we developed a spatio-temporal model in two dimensions comprised by three modules: mines, receivers, and the agar plate. Finite element methods were used to solve the system of partial differential equations (PDEs). Our model turned out to be very valuable in the circuit refinement and the design of experiments. Moreover, we continually improve out model by incorporating parameters from our own experimental data. | ||
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- | <li><b><br>Experimental Results</b> | + | <li><b><br>Experimental Results</b><br><br> We performed a lot of diffusion experiments in order to determine the distance between colonies in the grid, the incubation time and the strengh of the promoter used to activate the LuxI. The dialog with the model was very strong in this part. We set-up a proof-of-principle using GFP as reporter system. The LuxR promoter from registry has to be mutated to obtain a library of LuxR promoter with different sensitivities in order to distinguish between different levels of AHL. After the first tests with the final reporter system : the hydrolases, we need to review the circuit to reduce the leakiness of the Plac promoter responsible for the LuxR activation. We came up with a glucose shutdown of the Plac promoter and a negative feedback loop using lacI. Meanwhile we characterize the biobricks using various methods like Michealis-Menten kinetics and flow cytometry. |
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<li><b><br>Human practice</b><br><br>Inspired by our Colisweeper project, we analyzed the relationship between synthetic biology and games. For one thing synthetic biology can be used to play common games in a new way, possibly for educational purposes or as a basis for proof-of-principle experiments for new circuits. More recently synthetic biologists also started to use games as a research tool, an innovative approach to make use of crowd-sourcing and distributed computing. We want to find correlations and discuss possible consequences for Synthetic Biology. | <li><b><br>Human practice</b><br><br>Inspired by our Colisweeper project, we analyzed the relationship between synthetic biology and games. For one thing synthetic biology can be used to play common games in a new way, possibly for educational purposes or as a basis for proof-of-principle experiments for new circuits. More recently synthetic biologists also started to use games as a research tool, an innovative approach to make use of crowd-sourcing and distributed computing. We want to find correlations and discuss possible consequences for Synthetic Biology. |
Revision as of 12:55, 24 October 2013