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蛋白动力学和底物质子化状态调控 -4-羟基-L-脯氨酸脱水酶的催化作用。

Protein Dynamics and Substrate Protonation States Mediate the Catalytic Action of -4-Hydroxy-l-Proline Dehydratase.

机构信息

Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States.

出版信息

J Phys Chem B. 2021 Jul 22;125(28):7774-7784. doi: 10.1021/acs.jpcb.1c05320. Epub 2021 Jul 8.

Abstract

The enzyme -4-hydroxy-l-proline (Hyp) dehydratase (HypD) is among the most abundant glycyl radical enzymes (GREs) in the healthy human gut microbiome and is considered a promising antibiotic target for the prominent antibiotic-resistant pathogen . Although an enzymatic mechanism has been proposed, the role of the greater HypD protein environment in mediating radical reactivity is not well understood. To fill this gap in understanding, we investigate HypD across multiple time- and length-scales using electronic structure modeling and classical molecular dynamics. We observe that the Hyp substrate protonation state significantly alters both its enzyme-free reactivity and its dynamics within the enzyme active site. Accurate coupled-cluster modeling suggests the deprotonated form of Hyp to be the most reactive protonation state for C5-H activation. In the protein environment, hydrophobic interactions modulate the positioning of the Cys434 radical to enhance the reactivity of C5-H abstraction. Long-time dynamics reveal that changing Hyp protonation states triggers the switching of a Leu643-gated water tunnel, a functional feature that has not yet been observed for members of the GRE superfamily.

摘要

酶 4-羟基-L-脯氨酸(Hyp)脱水酶(HypD)是健康人体肠道微生物组中含量最丰富的甘氨酰基自由基酶(GREs)之一,被认为是一种有前途的抗生素靶标,可用于治疗突出的抗生素耐药病原体。尽管已经提出了一种酶促机制,但更大的 HypD 蛋白环境在介导自由基反应性方面的作用尚不清楚。为了填补这一理解空白,我们使用电子结构建模和经典分子动力学方法在多个时间和长度尺度上研究 HypD。我们观察到 Hyp 底物的质子化状态显著改变了其在酶游离状态下的反应性及其在酶活性部位内的动力学。精确的耦合簇建模表明,Hyp 的去质子形式是 C5-H 活化的最具反应性的质子化状态。在蛋白质环境中,疏水相互作用调节 Cys434 自由基的定位,从而增强 C5-H 抽取的反应性。长时间动力学表明,改变 Hyp 的质子化状态会触发 Leu643 门控水隧道的切换,这是 GRE 超家族成员尚未观察到的功能特征。

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