IGEM:IMPERIAL/2008/New/Home
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This is achieved in three stages. First by utilising an endogenous light-sensing mechanism, the bacteria is captured in the desired location using 3D holography. Next bacterial locomotion is suspended in the region of interest using a recently-discovered clutch mechanism. This involves disengaging the flagellum from the motor protein. Finally, when our bacteria are stationary in the correct location, the biomaterial production is triggered. These biomaterials can self-assemble to form a 3D bio-scaffold. Applications of our Biofabricator range from regenerative tissue engineering to Bio-Couture. | This is achieved in three stages. First by utilising an endogenous light-sensing mechanism, the bacteria is captured in the desired location using 3D holography. Next bacterial locomotion is suspended in the region of interest using a recently-discovered clutch mechanism. This involves disengaging the flagellum from the motor protein. Finally, when our bacteria are stationary in the correct location, the biomaterial production is triggered. These biomaterials can self-assemble to form a 3D bio-scaffold. Applications of our Biofabricator range from regenerative tissue engineering to Bio-Couture. | ||
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[[Image:Imperial_2008_Bioprinter_Cartoon.png |center|600px| Overview of our planned system]] | [[Image:Imperial_2008_Bioprinter_Cartoon.png |center|600px| Overview of our planned system]] | ||
[[Image:Imperial_2008_Basic_Circuit.jpg |center|450px |Basic Circuit Diagram]] | [[Image:Imperial_2008_Basic_Circuit.jpg |center|450px |Basic Circuit Diagram]] | ||
Revision as of 10:53, 30 September 2008
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