Metabolic engineering of Escherichia coli for shikimate pathway derivative production from glucose–xylose co-substrate

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作者
Ryosuke Fujiwara
Shuhei Noda
Tsutomu Tanaka
Akihiko Kondo
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[1] Kobe University,Department of Chemical Science and Engineering, Graduate School of Engineering
[2] RIKEN,Center for Sustainable Resource Science
[3] Kobe University,Graduate School of Science, Technology and Innovation
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Glucose and xylose are the major components of lignocellulose. Effective utilization of both sugars can improve the efficiency of bioproduction. Here, we report a method termed parallel metabolic pathway engineering (PMPE) for producing shikimate pathway derivatives from glucose–xylose co-substrate. In this method, we seek to use glucose mainly for target chemical production, and xylose for supplying essential metabolites for cell growth. Glycolysis and the pentose phosphate pathway are completely separated from the tricarboxylic acid (TCA) cycle. To recover cell growth, we introduce a xylose catabolic pathway that directly flows into the TCA cycle. As a result, we can produce 4.09 g L−1cis,cis-muconic acid using the PMPE Escherichia coli strain with high yield (0.31 g g−1 of glucose) and produce l-tyrosine with 64% of the theoretical yield. The PMPE strategy can contribute to the development of clean processes for producing various valuable chemicals from lignocellulosic resources.
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