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A dynamic metabolite valve for the control of central carbon metabolism

Author(s)
Solomon, Kevin V; Sanders, Tarielle M; Prather, Kristala LJ
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Creative Commons Attribution-NonCommercial-NoDerivs License http://creativecommons.org/licenses/by-nc-nd/4.0/
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Abstract
Successful redirection of endogenous resources into heterologous pathways is a central tenet in the creation of efficient microbial cell factories. This redirection, however, may come at a price of poor biomass accumulation, reduced cofactor regeneration and low recombinant enzyme expression. In this study, we propose a metabolite valve to mitigate these issues by dynamically tuning endogenous processes to balance the demands of cell health and pathway efficiency. A control node of glucose utilization, glucokinase (Glk), was exogenously manipulated through either engineered antisense RNA or an inverting gene circuit. Using these techniques, we were able to directly control glycolytic flux, reducing the specific growth rate of engineered Escherichia coli by up to 50% without altering final biomass accumulation. This modulation was accompanied by successful redirection of glucose into a model pathway leading to an increase in the pathway yield and reduced carbon waste to acetate. This work represents one of the first examples of the dynamic redirection of glucose away from central carbon metabolism and enables the creation of novel, efficient intracellular pathways with glucose used directly as a substrate. © 2012 Elsevier Inc.
Date issued
2012
URI
https://hdl.handle.net/1721.1/133908
Department
Massachusetts Institute of Technology. Department of Chemical Engineering; MIT Synthetic Biology Engineering Research Center
Journal
Metabolic Engineering
Publisher
Elsevier BV
Citation
Solomon, K. V., T. M. Sanders, and K. L. J. Prather. "A Dynamic Metabolite Valve for the Control of Central Carbon Metabolism." Metabolic Engineering 14 6 (2012): 661-71.
Version: Author's final manuscript

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