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Construction of artificial micro-aerobic metabolism for energy- and carbon-efficient synthesis of medium chain fatty acids in Escherichia coli

机译:大肠杆菌中链脂肪酸能量和碳效化合成人工微氧代谢的构建

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摘要

Medium-chain (C-6-C-10) chemicals are important components of fuels, commodities and fine chemicals. Numerous exciting achievements have proven reversed beta-oxidation cycle as a promising platform to synthesize these chemicals. However, under native central carbon metabolism, energetic and redox constraints limit the efficient operation of reversed beta-oxidation cycle. Current fermentative platform has to use different chemically and energetically inefficient ways for acetyl-CoA and NADH biosynthesis, respectively. The characteristics such as supplementation of additional acetate and formate or high ATP requirement makes this platform incompatible with large-scale production. Here, an artificial micro-aerobic metabolism for energy and carbon-efficient conversion of glycerol to MCFAs was constructed to present solutions towards these barriers. After evaluating numerous bacteria pathways under micro-aerobic conditions, one synthetic metabolic step enabling biosynthesis of acetyl-CoA and NADH simultaneously, without any energy cost and additional carbon requirement, and reducing loss of carbon to carbon dioxide-emitting reactions, was conceived and successfully constructed. The pyruvate dehydrogenase from Enterococcus faecalis was identified and biochemically characterized, demonstrating the most suitable characteristics. Furthermore, the carbon and energy metabolism in Escherichia coli was rewired by the clustered regularly interspaced short palindromic repeats interference system, inhibiting native fermentation pathways outcompeting this synthetic step. The present engineered strain exhibited a 15.7-fold increase in MCFA titer compared with that of the initial strain, and produced 15.67 g/L MCFAs from the biodiesel byproduct glycerol in 3-L bioreactor without exogenous feed of acetate or formate, representing the highest MCFA titer reported to date. This work demonstrates this artificial micro-aerobic metabolism has the potential to enable the cost-effective, large-scale production of fatty acids and other value-added reduced chemicals.
机译:中链(C-6-C-10)化学品是燃料,商品和精细化学品的重要组成部分。许多令人兴奋的成就被证明是逆转的β-氧化循环作为合成这些化学品的有希望的平台。然而,在本地中央碳代谢下,能量和氧化还原约束限制了逆转β-氧化循环的有效操作。目前的发酵平台必须分别使用不同的化学和能量低效的乙酰-CoA和NADH生物合成方式。补充额外醋酸盐和甲酸或高ATP要求的特性使得该平台与大规模生产不相容。这里,构建了对MCFA的能量和碳效碳化碳化碳转化的人工微食代谢以对这些屏障的溶液呈现溶液。在评估微食条件下的许多细菌途径之后,同时能够同时能够同时能够生物合成乙酰-CoA和NADH的合成代谢步骤,并不能够在没有任何能量成本和额外的碳要求,减少碳与二氧化碳发光反应的丧失建。鉴定了肠球菌粪便的丙酮酸脱氢酶并生物化学表征,证明了最合适的特征。此外,大肠杆菌中的碳和能量代谢被聚类定期间隙的短语重复干扰系统重新加线,抑制本地发酵途径,脱颖而出的这种合成步骤。与初始菌株相比,本发明的工程菌株表现出15.7倍的MCFA滴度增加,并在3-L生物反应器中从生物柴油副产物甘油中产生15.67g / L MCFA,而不会出现醋酸酯或甲酸盐的外源饲料,代表最高MCFA滴度报告迄今为止。这项工作证明了这种人造微食代谢具有能力使得能够实现成本效益,大规模生产脂肪酸和其他增值的减少的化学品。

著录项

  • 来源
    《Metabolic engineering》 |2019年第2019期|共13页
  • 作者单位

    Nanjing Agr Univ Coll Food Sci &

    Technol 1 Weigang Rd Nanjing 210095 Jiangsu Peoples R China;

    Nanjing Agr Univ Coll Food Sci &

    Technol 1 Weigang Rd Nanjing 210095 Jiangsu Peoples R China;

    Nanjing Forestry Univ Coll Light Ind &

    Food Engn Dept Food Sci &

    Technol Nanjing 210037 Jiangsu;

    Nanjing Agr Univ Coll Food Sci &

    Technol 1 Weigang Rd Nanjing 210095 Jiangsu Peoples R China;

    Nanjing Agr Univ Coll Food Sci &

    Technol 1 Weigang Rd Nanjing 210095 Jiangsu Peoples R China;

    Nanjing Agr Univ Coll Food Sci &

    Technol 1 Weigang Rd Nanjing 210095 Jiangsu Peoples R China;

    Nanjing Agr Univ Coll Food Sci &

    Technol 1 Weigang Rd Nanjing 210095 Jiangsu Peoples R China;

    Nanjing Agr Univ Coll Food Sci &

    Technol 1 Weigang Rd Nanjing 210095 Jiangsu Peoples R China;

    Nanjing Agr Univ Coll Food Sci &

    Technol 1 Weigang Rd Nanjing 210095 Jiangsu Peoples R China;

    Nanjing Agr Univ Coll Food Sci &

    Technol 1 Weigang Rd Nanjing 210095 Jiangsu Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 蛋白质;
  • 关键词

    beta-oxidation reversal; ATP; NADH; Synthetic biology; Metabolic engineering;

    机译:β-氧化逆转;ATP;NADH;合成生物学;代谢工程;

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