首页> 美国卫生研究院文献>Protein Science : A Publication of the Protein Society >Two alternative modes for optimizing nylon-6 byproduct hydrolytic activity from a carboxylesterase with a β-lactamase fold: X-ray crystallographic analysis of directly evolved 6-aminohexanoate-dimer hydrolase
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Two alternative modes for optimizing nylon-6 byproduct hydrolytic activity from a carboxylesterase with a β-lactamase fold: X-ray crystallographic analysis of directly evolved 6-aminohexanoate-dimer hydrolase

机译:用于优化具有β-内酰胺酶折叠的羧酸酯酶的尼龙6副产物水解活性的两种替代模式:直接生成的6-氨基己酸二聚体水解酶的X射线晶体学分析

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摘要

Promiscuous 6-aminohexanoate-linear dimer (Ald)-hydrolytic activity originally obtained in a carboxylesterase with a β-lactamase fold was enhanced about 80-fold by directed evolution using error-prone PCR and DNA shuffling. Kinetic studies of the mutant enzyme (Hyb-S4M94) demonstrated that the enzyme had acquired an increased affinity (Km = 15 mM) and turnover (kcat = 3.1 s−1) for Ald, and that a catalytic center suitable for nylon-6 byproduct hydrolysis had been generated. Construction of various mutant enzymes revealed that the enhanced activity in the newly evolved enzyme is due to the substitutions R187S/F264C/D370Y. Crystal structures of Hyb-S4M94 with bound substrate suggested that catalytic function for Ald was improved by hydrogen-bonding/hydrophobic interactions between the Ald—COOH and Tyr370, a hydrogen-bonding network from Ser187 to , and interaction between and Gln27-Oɛ derived from another subunit in the homo-dimeric structure. In wild-type Ald-hydrolase (NylB), Ald-hydrolytic activity is thought to be optimized by the substitutions G181D/H266N, which improve an electrostatic interaction with (Kawashima et al., FEBS J 2009; 276:2547–2556). We propose here that there exist at least two alternative modes for optimizing the Ald-hydrolytic activity of a carboxylesterase with a β-lactamase fold.
机译:通过使用易错PCR和DNA改组进行定向进化,最初在具有β-内酰胺酶折叠的羧酸酯酶中获得的混杂的6-氨基己酸酯线性二聚体(Ald)水解活性提高了约80倍。突变酶(Hyb-S4M94)的动力学研究表明,该酶与Ald的亲和力(Km = 15 mM)和周转率(kcat = 3.1 s -1 )增加,并且具有催化作用。已经产生了适用于尼龙-6副产物水解的中心。各种突变酶的构建揭示了新进化的酶中增强的活性归因于取代R187S / F264C / D370Y。具有结合底物的Hyb-S4M94的晶体结构表明,Ald-COOH和Tyr370之间的氢键/疏水相互作用,Ser187到Syr187的氢键网络以及与的Gln27-Oɛ之间的相互作用提高了Ald的催化功能。同二聚体结构中的另一个亚基。在野生型Ald水解酶(NylB)中,Ald水解活性被认为是通过取代G181D / H266N来优化的,它可以改善与之的静电相互作用(Kawashima et al。,FEBS J 2009; 276:2547-2556)。我们在这里建议存在至少两种替代模式,以优化具有β-内酰胺酶折叠的羧酸酯酶的Ald水解活性。

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