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第二配位层和远程相互作用能否调节非血红素铁(II)依赖性组蛋白去甲基化酶中的氢原子转移?

Can Second Coordination Sphere and Long-Range Interactions Modulate Hydrogen Atom Transfer in a Non-Heme Fe(II)-Dependent Histone Demethylase?

作者信息

Chaturvedi Shobhit S, Jaber Sathik Rifayee Simahudeen Bathir, Waheed Sodiq O, Wildey Jon, Warner Cait, Schofield Christopher J, Karabencheva-Christova Tatyana G, Christov Christo Z

机构信息

Department of Chemistry, Michigan Technological University, Houghton, Michigan49931, United States.

Department of Chemical Engineering, Michigan Technological University, Houghton, Michigan49931, United States.

出版信息

JACS Au. 2022 Aug 18;2(9):2169-2186. doi: 10.1021/jacsau.2c00345. eCollection 2022 Sep 26.

Abstract

Fe(II)-dependent oxygenases employ hydrogen atom transfer (HAT) to produce a myriad of products. Understanding how such enzymes use dynamic processes beyond the immediate vicinity of the active site to control the selectivity and efficiency of HAT is important for metalloenzyme engineering; however, obtaining such knowledge by experiments is challenging. This study develops a computational framework for identifying second coordination sphere (SCS) and especially long-range (LR) residues relevant for catalysis through dynamic cross-correlation analysis (DCCA) using the human histone demethylase PHF8 (KDM7B) as a model oxygenase. Furthermore, the study explores the mechanistic pathways of influence of the SCS and LR residues on the HAT reaction. To demonstrate the plausibility of the approach, we investigated the effect of a PHF8 F279S clinical mutation associated with X-linked intellectual disability, which has been experimentally shown to ablate PHF8-catalyzed demethylation. In agreement, the molecular dynamics (MD) and quantum mechanics/molecular mechanics (QM/MM) studies showed a change in the H3K9me2 substrate orientation and an increased HAT barrier. We systematically analyzed the pathways by which the identified SCS and LR residues may influence HAT by exploring changes in H3K9me2 substrate orientation, interdomain correlated motions, HAT transition state stabilization, reaction energetics, electron transfer mechanism, and alterations in the intrinsic electric field of PHF8. Importantly, SCS and LR variations decrease key motions of α9-α12 of the JmjC domain toward the Fe(IV)-center that are associated with tighter binding of the H3K9me2 substrate. SCS and LR residues alter the intrinsic electric field of the enzyme along the reaction coordinate and change the individual energetic contributions of residues toward TS stabilization. The overall results suggest that DCCA can indeed identify non-active-site residues relevant for catalysis. The substitutions of such dynamically correlated residues might be used as a tool to tune HAT in non-heme Fe(II)- and 2OG-dependent enzymes.

摘要

依赖于Fe(II)的加氧酶利用氢原子转移(HAT)产生多种产物。了解这类酶如何利用活性位点紧邻区域之外的动态过程来控制HAT的选择性和效率,对于金属酶工程而言至关重要;然而,通过实验获取此类知识具有挑战性。本研究开发了一种计算框架,以人类组蛋白去甲基化酶PHF8(KDM7B)作为模型加氧酶,通过动态交叉相关分析(DCCA)来识别与催化相关的第二配位层(SCS)尤其是远程(LR)残基。此外,该研究还探索了SCS和LR残基对HAT反应产生影响的机制途径。为了证明该方法的合理性,我们研究了与X连锁智力障碍相关的PHF8 F279S临床突变的影响,实验已表明该突变会消除PHF8催化的去甲基化作用。与此一致,分子动力学(MD)和量子力学/分子力学(QM/MM)研究表明H3K9me2底物取向发生了变化,且HAT势垒增加。我们通过探索H3K9me2底物取向的变化、结构域间的相关运动、HAT过渡态稳定性、反应能量学、电子转移机制以及PHF8固有电场的改变,系统地分析了所识别的SCS和LR残基可能影响HAT的途径。重要的是,SCS和LR的变化减少了JmjC结构域的α9-α12朝向Fe(IV)中心的关键运动,这些运动与H3K9me2底物的紧密结合相关。SCS和LR残基沿着反应坐标改变了酶的固有电场,并改变了残基对过渡态稳定化的个体能量贡献。总体结果表明,DCCA确实能够识别与催化相关的非活性位点残基。此类动态相关残基的取代可能被用作一种工具,用于调节非血红素Fe(II)和2OG依赖性酶中的HAT。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3e0f/9516565/c499eb0ba773/au2c00345_0010.jpg

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