Team:Oxford/bioremediation
From 2014.igem.org
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The three 'DCMation' links below will guide you through our interdisciplinary approach of evaluating and improving the DCM-degrading capacity of the native bacterium, Methylobacterium extorquens DM4. Additionally, these pages explain how and why we have expressed the DCM degradation system in E. coli and P. putida, and how we are adapting them for DCMation.<br><br> | The three 'DCMation' links below will guide you through our interdisciplinary approach of evaluating and improving the DCM-degrading capacity of the native bacterium, Methylobacterium extorquens DM4. Additionally, these pages explain how and why we have expressed the DCM degradation system in E. coli and P. putida, and how we are adapting them for DCMation.<br><br> | ||
The three 'Microcompartment' pages will take you on a journey of how models of microcompartments designed by our engineers work hand-in-hand with the results that our biochemists obtained in wet-lab experiments. After explaining what microcompartments are and why we use them, we introduce our collaboration with the Melbourne iGEM team and their project, the Star Peptide, which is a possible alternative to the use of microcompartments. <br><br> | The three 'Microcompartment' pages will take you on a journey of how models of microcompartments designed by our engineers work hand-in-hand with the results that our biochemists obtained in wet-lab experiments. After explaining what microcompartments are and why we use them, we introduce our collaboration with the Melbourne iGEM team and their project, the Star Peptide, which is a possible alternative to the use of microcompartments. <br><br> | ||
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+ | DcmA catalysis<br> | ||
+ | We propose the following plausible mechanism for the catalytic dehalogenation of dichloromethane by DcmA, in which glutathione is a co-factor: | ||
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Revision as of 00:06, 18 October 2014