Literature DB >> 29429342

Modular Engineering Intracellular NADH Regeneration Boosts Extracellular Electron Transfer of Shewanella oneidensis MR-1.

Feng Li1, Yuanxiu Li1, Liming Sun2, Xiaoli Chen1, Xingjuan An1, Changji Yin1, Yingxiu Cao1, Hui Wu3, Hao Song1.   

Abstract

Efficient extracellular electron transfer (EET) of exoelectrogens is essentially for practical applications of versatile bioelectrochemical systems. Intracellular electrons flow from NADH to extracellular electron acceptors via EET pathways. However, it was yet established how the manipulation of intracellular NADH impacted the EET efficiency. Strengthening NADH regeneration from NAD+, as a feasible approach for cofactor engineering, has been used in regulating the intracellular NADH pool and the redox state (NADH/NAD+ ratio) of cells. Herein, we first adopted a modular metabolic engineering strategy to engineer and drive the metabolic flux toward the enhancement of intracellular NADH regeneration. We systematically studied 16 genes related to the NAD+-dependent oxidation reactions for strengthening NADH regeneration in the four metabolic modules of S. oneidensis MR-1, i.e., glycolysis, C1 metabolism, pyruvate fermentation, and tricarboxylic acid cycle. Among them, three endogenous genes mostly responsible for increasing NADH regeneration were identified, namely gapA2 encoding a NAD+-dependent glyceraldehyde-3-phosphate dehydrogenase in the glycolysis module, mdh encoding a NAD+-dependent malate dehydrogenase in the TCA cycle, and pflB encoding a pyruvate-formate lyase that converted pyruvate to formate in the pyruvate fermentation module. An exogenous gene fdh* from Candida boidinii encoding a NAD+-dependent formate dehydrogenase to increase NADH regeneration in the pyruvate fermentation module was further identified. Upon assembling these four genes in S. oneidensis MR-1, ∼4.3-fold increase in NADH/NAD+ ratio, and ∼1.2-fold increase in intracellular NADH pool were obtained under anaerobic conditions without discharge, which elicited ∼3.0-fold increase in the maximum power output in microbial fuel cells, from 26.2 ± 2.8 (wild-type) to 105.8 ± 4.1 mW/m2 (recombinant S. oneidensis), suggesting a boost in the EET efficiency. This modular engineering method in controlling the intracellular reducing equivalents would be a general approach in tuning the EET efficiency of exoelectrogens.

Entities:  

Keywords:  NADH regeneration; Shewanella oneidensis; cofactor engineering; extracellular electron transfer; microbial fuel cells; reducing equivalents

Mesh:

Substances:

Year:  2018        PMID: 29429342     DOI: 10.1021/acssynbio.7b00390

Source DB:  PubMed          Journal:  ACS Synth Biol        ISSN: 2161-5063            Impact factor:   5.110


  10 in total

1.  Pyruvate accelerates palladium reduction by regulating catabolism and electron transfer pathway in Shewanella oneidensis.

Authors:  Yuan-Yuan Cheng; Wen-Jing Wang; Shi-Ting Ding; Ming-Xing Zhang; Ai-Guo Tang; Ling Zhang; Dao-Bo Li; Bing-Bing Li; Guo-Zhi Deng; Chao Wu
Journal:  Appl Environ Microbiol       Date:  2021-01-29       Impact factor: 4.792

2.  Reconstruction of a Genome-Scale Metabolic Network for Shewanella oneidensis MR-1 and Analysis of its Metabolic Potential for Bioelectrochemical Systems.

Authors:  Jiahao Luo; Qianqian Yuan; Yufeng Mao; Fan Wei; Juntao Zhao; Wentong Yu; Shutian Kong; Yanmei Guo; Jingyi Cai; Xiaoping Liao; Zhiwen Wang; Hongwu Ma
Journal:  Front Bioeng Biotechnol       Date:  2022-05-12

3.  Effects of biofilm transfer and electron mediators transfer on Klebsiella quasipneumoniae sp. 203 electricity generation performance in MFCs.

Authors:  Yating Guo; Guozhen Wang; Hao Zhang; Hongyu Wen; Wen Li
Journal:  Biotechnol Biofuels       Date:  2020-09-21       Impact factor: 6.040

4.  Engineering Shewanella carassii, a newly isolated exoelectrogen from activated sludge, to enhance methyl orange degradation and bioelectricity harvest.

Authors:  Chi Yang; Junqi Zhang; Baocai Zhang; Dingyuan Liu; Jichao Jia; Feng Li; Hao Song
Journal:  Synth Syst Biotechnol       Date:  2022-05-01

Review 5.  Engineering S. oneidensis for Performance Improvement of Microbial Fuel Cell-a Mini Review.

Authors:  Dexter Hoi Long Leung; Yin Sze Lim; Kasimayan Uma; Guan-Ting Pan; Ja-Hon Lin; Siewhui Chong; Thomas Chung-Kuang Yang
Journal:  Appl Biochem Biotechnol       Date:  2020-11-17       Impact factor: 2.926

6.  Modular engineering to increase intracellular NAD(H/+) promotes rate of extracellular electron transfer of Shewanella oneidensis.

Authors:  Feng Li; Yuan-Xiu Li; Ying-Xiu Cao; Lei Wang; Chen-Guang Liu; Liang Shi; Hao Song
Journal:  Nat Commun       Date:  2018-09-07       Impact factor: 14.919

7.  Enzyme-Loaded Nanoreactors Enable the Continuous Regeneration of Nicotinamide Adenine Dinucleotide in Artificial Metabolisms.

Authors:  Seong-Min Jo; Frederik R Wurm; Katharina Landfester
Journal:  Angew Chem Int Ed Engl       Date:  2021-02-25       Impact factor: 15.336

8.  Improved energy efficiency in microbial fuel cells by bioethanol and electricity co-generation.

Authors:  Rong Xie; Shuang Wang; Kai Wang; Meng Wang; Biqiang Chen; Zheng Wang; Tianwei Tan
Journal:  Biotechnol Biofuels Bioprod       Date:  2022-08-17

9.  The Role of Glyceraldehyde-3-Phosphate Dehydrogenases in NADPH Supply in the Oleaginous Filamentous Fungus Mortierella alpina.

Authors:  Shunxian Wang; Haiqin Chen; Xin Tang; Hao Zhang; Guangfei Hao; Wei Chen; Yong Q Chen
Journal:  Front Microbiol       Date:  2020-04-28       Impact factor: 5.640

10.  Potential of Zymomonas mobilis as an electricity producer in ethanol production.

Authors:  Bo-Yu Geng; Lian-Ying Cao; Feng Li; Hao Song; Chen-Guang Liu; Xin-Qing Zhao; Feng-Wu Bai
Journal:  Biotechnol Biofuels       Date:  2020-03-05       Impact factor: 6.040

  10 in total

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