首页> 美国卫生研究院文献>Scientific Reports >Semi-rational engineering of a thermostable aldo–keto reductase from Thermotoga maritima for synthesis of enantiopure ethyl-2-hydroxy-4-phenylbutyrate (EHPB)
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Semi-rational engineering of a thermostable aldo–keto reductase from Thermotoga maritima for synthesis of enantiopure ethyl-2-hydroxy-4-phenylbutyrate (EHPB)

机译:半合理设计马氏嗜热菌的热稳定的醛酮还原酶用于合成对映体纯的-2-羟基-4-苯基丁酸乙酯(EHPB)

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摘要

A novel aldo-keto reductase Tm1743 characterized from Thermotoga maritima was explored as an effective biocatalyst in chiral alcohol production. Natural Tm1743 catalyzes asymmetric reduction of ethyl 2-oxo-4-phenylbutyrate (EOPB) at high efficiency, but the production of, ethyl (S)-2-hydroxy-4-phenylbutyrate ((S)-EHPB), which is less desirable, is preferred with an enantiomeric excess (ee) value of 76.5%. Thus, altering the enantioselectivity of Tm1743 to obtain the more valuable product (R)-EHPB for angiotensin drug synthesis is highly desired. In this work, we determined the crystal structure of Tm1743 in complex with its cofactor NADP+ at 2.0 Å resolution, and investigated the enantioselectivity of Tm1743 through semi-rational enzyme design. Molecular simulations based on the crystal structure obtained two binding models representing the pro-S and pro-R conformations of EOPB. Saturation mutagenesis studies revealed that Trp21 and Trp86 play important roles in determining the enantioselectivity of Tm1743. The best (R)- and (S)-EHPB preferring Tm1743 mutants, denoted as W21S/W86E and W21L/W118H, were identified; their ee values are 99.4% and 99.6% and the catalytic efficiencies are 0.81 and 0.12 mM−1s−1, respectively. Our work presents an efficient strategy to improve the enantioselectivity of a natural biocatalyst, which will serve as a guide for further exploration of new green catalysts for asymmetric reactions.
机译:探索了一种以海生热球菌为特征的新型醛酮还原酶Tm1743,它是生产手性醇的有效生物催化剂。天然Tm1743高效催化2-氧代-4-苯基丁酸乙酯(EOPB)的不对称还原,但生成(S)-2-羟基-4-苯基丁酸乙酯((S)-EHPB)的效果不理想优选具有76.5%的对映体过量(ee)值。因此,非常需要改变Tm1743的对映选择性以获得用于血管紧张素药物合成的更有价值的产物(R)-EHPB。在这项工作中,我们确定了Tm1743与辅因子NADP + 的复合物的晶体结构,分辨率为2.0Å,并通过半理性酶设计研究了Tm1743的对映选择性。基于晶体结构的分子模拟获得了两个结合模型,分别代表了EOPB的pro-S和pro-R构象。饱和诱变研究表明,Trp21和Trp86在确定Tm1743的对映选择性中起重要作用。确定了最好的(R)-和(S)-EHPB首选Tm1743突变体,分别表示为W21S / W86E和W21L / W118H。 ee值分别为99.4%和99.6%,催化效率分别为0.81和0.12 mM -1 s -1 。我们的工作提出了提高天然生物催化剂对映选择性的有效策略,这将为进一步探索用于不对称反应的新型绿色催化剂提供指导。

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