Literature DB >> 29122703

Improving metabolic efficiency of the reverse beta-oxidation cycle by balancing redox cofactor requirement.

Junjun Wu1, Xia Zhang2, Peng Zhou2, Jiaying Huang2, Xiudong Xia3, Wei Li2, Ziyu Zhou2, Yue Chen2, Yinghao Liu2, Mingsheng Dong4.   

Abstract

Previous studies have made many exciting achievements on pushing the functional reversal of beta-oxidation cycle (r-BOX) to more widespread adoption for synthesis of a wide variety of fuels and chemicals. However, the redox cofactor requirement for the efficient operation of r-BOX remains unclear. In this work, the metabolic efficiency of r-BOX for medium-chain fatty acid (C6-C10, MCFA) production was optimized by redox cofactor engineering. Stoichiometric analysis of the r-BOX pathway and further experimental examination identified NADH as a crucial determinant of r-BOX process yield. Furthermore, the introduction of formate dehydrogenase from Candida boidinii using fermentative inhibitor byproduct formate as a redox NADH sink improved MCFA titer from initial 1.2g/L to 3.1g/L. Moreover, coupling of increasing the supply of acetyl-CoA with NADH to achieve fermentative redox balance enabled product synthesis at maximum titers. To this end, the acetate re-assimilation pathway was further optimized to increase acetyl-CoA availability associated with the new supply of NADH. It was found that the acetyl-CoA synthetase activity and intracellular ATP levels constrained the activity of acetate re-assimilation pathway, and 4.7g/L of MCFA titer was finally achieved after alleviating these two limiting factors. To the best of our knowledge, this represented the highest titer reported to date. These results demonstrated that the key constraint of r-BOX was redox imbalance and redox engineering could further unleash the lipogenic potential of this cycle. The redox engineering strategies could be applied to acetyl-CoA-derived products or other bio-products requiring multiple redox cofactors for biosynthesis.
Copyright © 2017 International Metabolic Engineering Society. Published by Elsevier Inc. All rights reserved.

Entities:  

Keywords:  ATP; Metabolic engineering; NADH; Synthetic biology; β-oxidation reversal

Mesh:

Substances:

Year:  2017        PMID: 29122703     DOI: 10.1016/j.ymben.2017.11.001

Source DB:  PubMed          Journal:  Metab Eng        ISSN: 1096-7176            Impact factor:   9.783


  2 in total

1.  Limitations of Deuterium-Labelled Substrates for Quantifying NADPH Metabolism in Heterotrophic Arabidopsis Cell Cultures.

Authors:  Edward N Smith; James S O McCullagh; R George Ratcliffe; Nicholas J Kruger
Journal:  Metabolites       Date:  2019-09-28

2.  Metabolic engineering strategies to produce medium-chain oleochemicals via acyl-ACP:CoA transacylase activity.

Authors:  Qiang Yan; William T Cordell; Michael A Jindra; Dylan K Courtney; Madeline K Kuckuk; Xuanqi Chen; Brian F Pfleger
Journal:  Nat Commun       Date:  2022-03-25       Impact factor: 17.694

  2 in total

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