Team:ETH Zurich/project/overview

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(Implementation in E. coli)
(Implementation in E. coli)
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Mosaicoli involves two main constructs per cell, one for quorum sensing and the other with the integrase based XOR logic gate to perform computation. Each cell can receive two orthogonal AHLs - rhl and lux.  The rhl or the lux received by the cell bind to their corresponding repressors RhlR and LuxR, thus freeing the promoters PRhl and PLux respectively. Upon activation the promoters express the two integrases phiC31 and Bxb1 respectively.  
Mosaicoli involves two main constructs per cell, one for quorum sensing and the other with the integrase based XOR logic gate to perform computation. Each cell can receive two orthogonal AHLs - rhl and lux.  The rhl or the lux received by the cell bind to their corresponding repressors RhlR and LuxR, thus freeing the promoters PRhl and PLux respectively. Upon activation the promoters express the two integrases phiC31 and Bxb1 respectively.  
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The XOR gate present on the other construct comprises an asymmetric transcription terminator flanked by two pairs of opposing recombination sites recognised by phiC31 and Bxb1 respectively.  In the absence of both integrases, the terminator blocks transcription. Expression of either integrase alone inverts the DNA encoding the terminator and allows transcription of LuxI (or RhlI) and GFP. Presence of both integrases inverts the terminator twice bringing it back to original orientation of the terminator blocking transcription. {reference Bonnet}
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The XOR gate present on the other construct comprises an asymmetric transcription terminator flanked by two pairs of opposing recombination sites recognised by phiC31 and Bxb1 respectively.  In the absence of both integrases, the terminator blocks transcription. Expression of either integrase alone inverts the DNA encoding the terminator and allows transcription of LuxI (or RhlI) and GFP. Presence of both integrases inverts the terminator twice bringing it back to original orientation of the terminator blocking transcription. {reference Bonnet} We intend to use riboswitches to reduce leakiness.
Colonies of such cells are placed in a grid in a 3D-printed millifluidic chip. Each colony can exist in one of two states - ON and OFF. The cells are OFF if they do not produce any GFP and ON when they produce GFP. Each colony updates its state by integrating signals from its neighbours (colonies in the previous rows). We expect to see complex fluorescent patterns, such as the Sierpinski triangles after several rows of colonies on the grid have updated their states.
Colonies of such cells are placed in a grid in a 3D-printed millifluidic chip. Each colony can exist in one of two states - ON and OFF. The cells are OFF if they do not produce any GFP and ON when they produce GFP. Each colony updates its state by integrating signals from its neighbours (colonies in the previous rows). We expect to see complex fluorescent patterns, such as the Sierpinski triangles after several rows of colonies on the grid have updated their states.

Revision as of 19:32, 11 August 2014

iGEM ETH Zurich 2014

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