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Bioelectrocatalytic Conversion from N_2 to Chiral Amino Acids in a H_2/α-Keto Acid Enzymatic Fuel Cell

机译:H_2 /α-酮酸酶燃料电池中N_2到手性氨基酸的生物电催化转化

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摘要

Enzymatic electrosynthesis is a promising approach to produce useful chemicals with the requirement of external electrical energy input. Enzymatic fuel cells (EFCs) are devices to convert chemical energy to electrical energy via the oxidation of fuel at the anode and usually the reduction of oxygen or peroxide at the cathode. The integration of enzymatic electrosynthesis with EFC architectures can simultaneously result in self-powered enzymatic electrosynthesis with more valuable usage of electrons to produce high-value-added chemicals. In this study, a H_2/α-keto acid EFC was developed for the conversion from chemically inert nitrogen gas to chiral amino acids, powered by H_2 oxidation. A highly efficient cathodic reaction cascade was first designed and constructed. Powered by an applied voltage, the cathode supplied enough reducing equivalents to support the NH_3 production and NADH recycling catalyzed by nitrogenase and diaphorase. The produced NH3 and NADH were reacted in situ with leucine dehydrogenase (LeuDH) to generate L-norleucine with 2-ketohexanoic acid as the NH_3 acceptor. A 92% NH_3 conversion ratio and 87.1% Faradaic efficiency were achieved. On this basis, a H_2-powered fuel cell with hyper-thermostable hydrogenase (SHI) as the anodic catalyst was combined with the cathodic reaction cascade to form the H_2/α-keto acid EFC. After 10 h of reaction, the concentration of L-norleucine achieved 0.36 mM with >99% enantiomeric excess and 82% Faradaic efficiency. From the broad substrate scope and the high enzymatic enantioselectivity of LeuDH, the H_2/α-keto acid EFC is an energy-efficient alternative to electrochemically produce chiral amino acids for biotechnology applications.
机译:酶促电合成是一种有希望的方法,可以在需要外部电能输入的情况下生产有用的化学物质。酶燃料电池(EFC)是通过阳极处燃料的氧化以及通常在阴极处的氧气或过氧化物的还原将化学能转化为电能的装置。酶促电合成与EFC体系结构的集成可以同时产生自供电酶促电合成,同时更有价值地利用电子来生产高附加值的化学物质。在这项研究中,开发了一种H_2 /α-酮酸EFC,用于通过H_2氧化作用将化学惰性的氮气转化为手性氨基酸。首先设计和构建了高效的阴极反应级联。由施加的电压供电,阴极提供了足够的还原当量,以支持由固氮酶和黄递酶催化的NH_3产生和NADH循环。将产生的NH3和NADH与亮氨酸脱氢酶(LeuDH)原位反应,生成以2-酮己酸为NH_3受体的L-正亮氨酸。 NH_3转化率达到92%,法拉第效率达到87.1%。在此基础上,将具有超耐热性加氢酶(SHI)作为阳极催化剂的H_2动力燃料电池与阴极反应级联反应,形成H_2 /α-酮酸EFC。反应10小时后,L-正亮氨酸的浓度达到0.36 mM,对映体过量> 99%,法拉第效率为82%。从广泛的底物范围和LeuDH的高酶对映选择性,H_2 /α-酮酸EFC是电化学生产生物技术应用的手性氨基酸的节能替代品。

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  • 来源
    《Journal of the American Chemical Society》 |2020年第8期|4028-4036|共9页
  • 作者

  • 作者单位

    Department of Chemistry University of Utah Salt Lake City Utah 84112 United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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