Biosynthesis of chiral 3-hydroxyvalerate from single propionate-unrelated carbon sources in metabolically engineered <it>E. coli</it>

<p>Abstract</p> <p>Background</p> <p>The ability to synthesize chiral building block molecules with high optical purity is of considerable importance to the fine chemical and pharmaceutical industries. Production of one such compound, 3-hydroxyvalerate (3HV), has previo...

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Main Authors: Martin Collin H, Harwell Catey L, Tseng Hsien-Chung, Prather Kristala LJ
Format: Article
Language:English
Published: BMC 2010-11-01
Series:Microbial Cell Factories
Online Access:http://www.microbialcellfactories.com/content/9/1/96
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spelling doaj-ff3aa5e12b6d402fb380f27f627abac02020-11-24T21:47:09ZengBMCMicrobial Cell Factories1475-28592010-11-01919610.1186/1475-2859-9-96Biosynthesis of chiral 3-hydroxyvalerate from single propionate-unrelated carbon sources in metabolically engineered <it>E. coli</it>Martin Collin HHarwell Catey LTseng Hsien-ChungPrather Kristala LJ<p>Abstract</p> <p>Background</p> <p>The ability to synthesize chiral building block molecules with high optical purity is of considerable importance to the fine chemical and pharmaceutical industries. Production of one such compound, 3-hydroxyvalerate (3HV), has previously been studied with respect to the <it>in vivo </it>or <it>in vitro </it>enzymatic depolymerization of biologically-derived co-polymers of poly(3-hydroxybutyrate-co-3-hydroxyvalerate). However, production of this biopolymeric precursor typically necessitates the supplementation of a secondary carbon source (e.g., propionate) into the culture medium. In addition, previous approaches for producing 3HV have not focused on its enantiopure synthesis, and thus suffer from increased costs for product purification.</p> <p>Results</p> <p>Here, we report the selective biosynthesis of each 3HV stereoisomer from a single, renewable carbon source using synthetic metabolic pathways in recombinant strains of <it>Escherichia coli</it>. The product chirality was controlled by utilizing two reductases of opposing stereoselectivity. Improvement of the biosynthetic pathway activity and host background was carried out to elevate both the 3HV titers and 3HV/3HB ratios. Overall, shake-flask titers as high as 0.31 g/L and 0.50 g/L of (<it>S</it>)-3HV and (<it>R</it>)-3HV, respectively, were achieved in glucose-fed cultures, whereas glycerol-fed cultures yielded up to 0.19 g/L and 0.96 g/L of (<it>S</it>)-3HV and (<it>R</it>)-3HV, respectively.</p> <p>Conclusions</p> <p>Our work represents the first report of direct microbial production of enantiomerically pure 3HV from a single carbon source. Continued engineering of host strains and pathway enzymes will ultimately lead to more economical production of chiral 3HV.</p> http://www.microbialcellfactories.com/content/9/1/96
collection DOAJ
language English
format Article
sources DOAJ
author Martin Collin H
Harwell Catey L
Tseng Hsien-Chung
Prather Kristala LJ
spellingShingle Martin Collin H
Harwell Catey L
Tseng Hsien-Chung
Prather Kristala LJ
Biosynthesis of chiral 3-hydroxyvalerate from single propionate-unrelated carbon sources in metabolically engineered <it>E. coli</it>
Microbial Cell Factories
author_facet Martin Collin H
Harwell Catey L
Tseng Hsien-Chung
Prather Kristala LJ
author_sort Martin Collin H
title Biosynthesis of chiral 3-hydroxyvalerate from single propionate-unrelated carbon sources in metabolically engineered <it>E. coli</it>
title_short Biosynthesis of chiral 3-hydroxyvalerate from single propionate-unrelated carbon sources in metabolically engineered <it>E. coli</it>
title_full Biosynthesis of chiral 3-hydroxyvalerate from single propionate-unrelated carbon sources in metabolically engineered <it>E. coli</it>
title_fullStr Biosynthesis of chiral 3-hydroxyvalerate from single propionate-unrelated carbon sources in metabolically engineered <it>E. coli</it>
title_full_unstemmed Biosynthesis of chiral 3-hydroxyvalerate from single propionate-unrelated carbon sources in metabolically engineered <it>E. coli</it>
title_sort biosynthesis of chiral 3-hydroxyvalerate from single propionate-unrelated carbon sources in metabolically engineered <it>e. coli</it>
publisher BMC
series Microbial Cell Factories
issn 1475-2859
publishDate 2010-11-01
description <p>Abstract</p> <p>Background</p> <p>The ability to synthesize chiral building block molecules with high optical purity is of considerable importance to the fine chemical and pharmaceutical industries. Production of one such compound, 3-hydroxyvalerate (3HV), has previously been studied with respect to the <it>in vivo </it>or <it>in vitro </it>enzymatic depolymerization of biologically-derived co-polymers of poly(3-hydroxybutyrate-co-3-hydroxyvalerate). However, production of this biopolymeric precursor typically necessitates the supplementation of a secondary carbon source (e.g., propionate) into the culture medium. In addition, previous approaches for producing 3HV have not focused on its enantiopure synthesis, and thus suffer from increased costs for product purification.</p> <p>Results</p> <p>Here, we report the selective biosynthesis of each 3HV stereoisomer from a single, renewable carbon source using synthetic metabolic pathways in recombinant strains of <it>Escherichia coli</it>. The product chirality was controlled by utilizing two reductases of opposing stereoselectivity. Improvement of the biosynthetic pathway activity and host background was carried out to elevate both the 3HV titers and 3HV/3HB ratios. Overall, shake-flask titers as high as 0.31 g/L and 0.50 g/L of (<it>S</it>)-3HV and (<it>R</it>)-3HV, respectively, were achieved in glucose-fed cultures, whereas glycerol-fed cultures yielded up to 0.19 g/L and 0.96 g/L of (<it>S</it>)-3HV and (<it>R</it>)-3HV, respectively.</p> <p>Conclusions</p> <p>Our work represents the first report of direct microbial production of enantiomerically pure 3HV from a single carbon source. Continued engineering of host strains and pathway enzymes will ultimately lead to more economical production of chiral 3HV.</p>
url http://www.microbialcellfactories.com/content/9/1/96
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