Thermophilic Moorella thermoacetica as a platform microorganism for C1 gas utilization: physiology, engineering, and applications

被引:6
作者
Jia, Dechen [1 ,2 ]
Deng, Wangshuying [1 ,2 ]
Hu, Peng [3 ]
Jiang, Weihong [1 ]
Gu, Yang [1 ]
机构
[1] Chinese Acad Sci, CAS Ctr Excellence Mol Plant Sci, Inst Plant Physiol & Ecol, CAS Key Lab Synthet Biol, Shanghai 200032, Peoples R China
[2] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
[3] Shanghai GTL Biotech Co Ltd, 1688 North Guoquan Rd, Shanghai 200438, Peoples R China
关键词
Moorella thermoacetica; C1; gases; Physiology and metabolism; Genetic tools; Strain improvements; ACETIC-ACID; SYNGAS FERMENTATION; ENERGY-CONSERVATION; ETHANOL-PRODUCTION; ELECTRON SINK; CLOSTRIDIUM; BACTERIUM; ACETATE; ACETOGEN; CO2;
D O I
10.1186/s40643-023-00682-z
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
In the context of the rapid development of low-carbon economy, there has been increasing interest in utilizing naturally abundant and cost-effective one-carbon (C1) substrates for sustainable production of chemicals and fuels. Moorella thermoacetica, a model acetogenic bacterium, has attracted significant attention due to its ability to utilize carbon dioxide (CO2) and carbon monoxide (CO) via the Wood-Ljungdahl (WL) pathway, thereby showing great potential for the utilization of C1 gases. However, natural strains of M. thermoacetica are not yet fully suitable for industrial applications due to their limitations in carbon assimilation and conversion efficiency as well as limited product range. Over the past decade, progresses have been made in the development of genetic tools for M. thermoacetica, accelerating the understanding and modification of this acetogen. Here, we summarize the physiological and metabolic characteristics of M. thermoacetica and review the recent advances in engineering this bacterium. Finally, we propose the future directions for exploring the real potential of M. thermoacetica in industrial applications.
引用
收藏
页数:10
相关论文
共 92 条
  • [1] Fermentation of biomass-generated synthesis gas: Effects of nitric oxide
    Ahmed, Asma
    Lewis, Randy S.
    [J]. BIOTECHNOLOGY AND BIOENGINEERING, 2007, 97 (05) : 1080 - 1086
  • [2] FERMENTATION OF GLUCOSE, FRUCTOSE, AND XYLOSE BY CLOSTRIDIUM-THERMOACETICUM - EFFECT OF METALS ON GROWTH YIELD, ENZYMES, AND SYNTHESIS OF ACETATE FROM CO2
    ANDREESE.JR
    SCHAUPP, A
    NEURAUTE.C
    BROWN, A
    LJUNGDAH.LG
    [J]. JOURNAL OF BACTERIOLOGY, 1973, 114 (02) : 743 - 751
  • [3] Recent progress in the engineering of C1-utilizing microbes
    Bae, Jiyun
    Jin, Sangrak
    Kang, Seulgi
    Cho, Byung-Kwan
    Oh, Min-Kyu
    [J]. CURRENT OPINION IN BIOTECHNOLOGY, 2022, 78
  • [4] Methane emissions: choosing the right climate metric and time horizon
    Balcombe, Paul
    Speirs, Jamie F.
    Brandon, Nigel P.
    Hawkes, Adam D.
    [J]. ENVIRONMENTAL SCIENCE-PROCESSES & IMPACTS, 2018, 20 (10) : 1323 - 1339
  • [5] "Hot" acetogenesis
    Basen, Mirko
    Mueller, Volker
    [J]. EXTREMOPHILES, 2017, 21 (01) : 15 - 26
  • [6] Complete Genome Sequence of the Acetogenic Bacterium Moorella thermoacetica DSM 2955(T)
    Bengelsdorf, Frank R.
    Poehlein, Anja
    Esser, Carola
    Schiel-Bengelsdorf, Bettina
    Daniel, Rolf
    Duerre, Peter
    [J]. GENOME ANNOUNCEMENTS, 2015, 3 (05)
  • [7] Enabling Ethanologenesis in Moorella thermoacetica through Construction of a Replicating Shuttle Vector
    Bourgade, Barbara
    Millard, James
    Humphreys, Christopher M.
    Minton, Nigel P.
    Islam, M. Ahsanul
    [J]. FERMENTATION-BASEL, 2022, 8 (11):
  • [8] Two propanediol utilization-like proteins of Moorella thermoacetica with phosphotransacetylase activity
    Breitkopf, Ronja
    Uhlig, Ronny
    Drenckhan, Tina
    Fischer, Ralf-Joerg
    [J]. EXTREMOPHILES, 2016, 20 (05) : 653 - 661
  • [9] Brumm PJ, 1985, US Patent, Patent No. [4814273A, 4814273]
  • [10] Energy Conservation in Fermentations of Anaerobic Bacteria
    Buckel, Wolfgang
    [J]. FRONTIERS IN MICROBIOLOGY, 2021, 12