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Escherichia coli Enoyl-Acyl Carrier Protein Reductase (FabI) Supports Efficient Operation of a Functional Reversal of the β-Oxidation Cycle

机译:大肠杆菌烯酰基-酰基载体蛋白还原酶(FabI)支持β-氧化循环功能逆转的有效操作

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摘要

We recently used a synthetic/bottom-up approach to establish the identity of the four enzymes composing an engineered functional reversal of the β-oxidation cycle for fuel and chemical production in Escherichia coli (J. M. Clomburg, J. E. Vick, M. D. Blankschien, M. Rodriguez-Moya, and R. Gonzalez, ACS Synth Biol 1:541–554, 2012, ). While native enzymes that catalyze the first three steps of the pathway were identified, the identity of the native enzyme(s) acting as the trans-enoyl coenzyme A (CoA) reductase(s) remained unknown, limiting the amount of product that could be synthesized (e.g., 0.34 g/liter butyrate) and requiring the overexpression of a foreign enzyme (the Euglena gracilis trans-enoyl-CoA reductase [EgTER]) to achieve high titers (e.g., 3.4 g/liter butyrate). Here, we examine several native E. coli enzymes hypothesized to catalyze the reduction of enoyl-CoAs to acyl-CoAs. Our results indicate that FabI, the native enoyl-acyl carrier protein (enoyl-ACP) reductase (ENR) from type II fatty acid biosynthesis, possesses sufficient NADH-dependent TER activity to support the efficient operation of a β-oxidation reversal. Overexpression of FabI proved as effective as EgTER for the production of butyrate and longer-chain carboxylic acids. Given the essential nature of fabI, we investigated whether bacterial ENRs from other families were able to complement a fabI deletion without promiscuous reduction of crotonyl-CoA. These characteristics from Bacillus subtilis FabL enabled ΔfabI complementation experiments that conclusively established that FabI encodes a native enoyl-CoA reductase activity that supports the β-oxidation reversal in E. coli.
机译:我们最近使用一种合成/自下而上的方法来确定四种酶的身份,这四种酶组成了工程化的β-氧化循环的功能逆转,用于大肠杆菌中的燃料和化学生产(JM Clomburg,JE Vick,MD Blankschien,M。Rodriguez -Moya和R. Gonzalez,ACS Synth Biol 1:541–554,2012,)。虽然确定了可催化该途径前三个步骤的天然酶,但仍不清楚用作反式-烯酰辅酶A(CoA)还原酶的天然酶的身份,从而限制了合成(例如0.34 g /升丁酸),并且需要过量表达外来酶(Euglena gracilis反式烯酰-CoA还原酶[EgTER])以实现高滴度(例如3.4 g /升丁酸)。在这里,我们检查了几种天然的大肠杆菌酶,这些酶被认为可催化将烯酰辅酶A还原为酰基辅酶A。我们的结果表明,FabI,即来自II型脂肪酸生物合成的天然烯酰基-酰基载体蛋白(enoyl-ACP)还原酶(ENR),具有足够的NADH依赖性TER活性,以支持β氧化逆转的有效操作。事实证明,FabI的过表达与EgTER一样有效,可生产丁酸酯和长链羧酸。鉴于fabI的本质,我们调查了其他家族的细菌ENR是否能够在不过度降低巴豆酰辅酶A的情况下补充fabI缺失。枯草芽孢杆菌FabL的这些特征使得能够进行ΔfabI互补实验,从而确定FabI编码支持大肠杆菌中β-氧化逆转的天然烯酰-CoA还原酶活性。

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