Team:ETH Zurich/project/overview

From 2014.igem.org

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(Principle and Goals)
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==Summary==
==Summary==
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Emergence of complex patterns in nature is a fascinating and widely spread phenomenon, which is not fully understood yet. Mosaicoli aims to investigate emergence of complex patterns from a simple rule by engineering a cellular automaton into ''E. coli'' bacteria. This automaton comprises a grid of colonies on a 3D-printed millifluidic chip. Each colony is either in an ON or OFF state and updates its state by integrating signals from its neighbors according to a genetically pre-programmed logic rule. Complex patterns such as Sierpinski triangles are visualized by fluorescence after several steps of row-wise propagation. Sequential logic computation based on quorum sensing is challenged by leakiness and crosstalk present in biological systems. Mosaicoli overcomes these issues by exploiting multichannel orthogonal communication, riboregulators and integrase-based XOR logic gates. Engineering such a reliable system not only enables a better understanding of emergent patterns, but also provides novel building blocks for biological computers.
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Emergence of complex patterns in nature is a fascinating and widely spread phenomenon, which is not fully understood yet. Mosai''coli'' aims to investigate emergence of complex patterns from a simple rule by engineering a cellular automaton into ''E. coli'' bacteria. This automaton comprises a grid of colonies on a 3D-printed millifluidic chip. Each colony is either in an ON or OFF state and updates its state by integrating signals from its neighbors according to a genetically pre-programmed logic rule. Complex patterns such as Sierpinski triangles are visualized by fluorescence after several steps of row-wise propagation. Sequential logic computation based on quorum sensing is challenged by leakiness and crosstalk present in biological systems. Mosai''coli'' overcomes these issues by exploiting multichannel orthogonal communication, riboregulators and integrase-based XOR logic gates. Engineering such a reliable system not only enables a better understanding of emergent patterns, but also provides novel building blocks for biological computers.
== Background ==
== Background ==
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* Make a Sierpinski triangle pattern appear in a grid
* Make a Sierpinski triangle pattern appear in a grid
* Conjugate quorum sensing and logic gates in bacterial colonies
* Conjugate quorum sensing and logic gates in bacterial colonies
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* Implement an XOR gate in an E. coli
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* Implement an XOR gate in an ''E. coli''
* Characterize integrases (retrieve missing parameters)
* Characterize integrases (retrieve missing parameters)
* Study quorum sensing mechanism aiming to lower the leakiness
* Study quorum sensing mechanism aiming to lower the leakiness

Revision as of 07:43, 12 August 2014

iGEM ETH Zurich 2014

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