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核糖核苷酸还原酶中界面酪氨酸之间非绝热质子耦合电子转移过程中的氢隧穿和构象运动

Hydrogen Tunneling and Conformational Motions in Nonadiabatic Proton-Coupled Electron Transfer between Interfacial Tyrosines in Ribonucleotide Reductase.

作者信息

Zhong Jiayun, Zhu Qiwen, Soudackov Alexander V, Hammes-Schiffer Sharon

机构信息

Department of Chemistry, Yale University, New Haven, Connecticut 06520, United States.

Department of Chemistry, Princeton University, Princeton, New Jersey 08544, United States.

出版信息

J Am Chem Soc. 2025 Feb 5;147(5):4459-4468. doi: 10.1021/jacs.4c15756. Epub 2025 Jan 22.

DOI:10.1021/jacs.4c15756
PMID:39841588
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11829447/
Abstract

Ribonucleotide reductase (RNR) is essential for DNA synthesis and repair in all living organisms. The mechanism of RNR requires long-range radical transport through a proton-coupled electron transfer (PCET) pathway spanning two different protein subunits. Herein, the direct PCET reaction between the interfacial tyrosine residues, Y356 and Y731, is investigated with a vibronically nonadiabatic theory that treats the transferring proton and all electrons quantum mechanically. The input quantities to the PCET rate constant expression are computed with a combination of density functional theory and molecular dynamics simulations. The calculations highlight the importance of hydrogen tunneling in this PCET reaction. Compression of the distance between the proton donor and acceptor oxygen atoms of the interfacial tyrosine residues is essential to facilitate hydrogen tunneling by increasing the overlap between the reactant and product proton vibrational wave functions. This compression occurs by thermal conformational fluctuations of these interfacial tyrosine residues. N733 and R411 are identified as key residues that can hydrogen bond to Y731 and Y356, respectively, and thereby compete with the hydrogen-bonding interaction between Y731 and Y356 required for direct PCET. Understanding the roles of hydrogen tunneling and conformational motions in this interfacial PCET reaction, as well as identifying other residues that may impact the kinetics, is important for targeted protein engineering efforts to modulate RNR activity.

摘要

核糖核苷酸还原酶(RNR)对于所有生物的DNA合成和修复至关重要。RNR的机制需要通过跨越两个不同蛋白质亚基的质子耦合电子转移(PCET)途径进行长程自由基传输。在此,利用一种将转移质子和所有电子进行量子力学处理的振动非绝热理论,研究了界面酪氨酸残基Y356和Y731之间的直接PCET反应。PCET速率常数表达式的输入量通过密度泛函理论和分子动力学模拟相结合的方法进行计算。计算结果突出了氢隧穿在该PCET反应中的重要性。压缩界面酪氨酸残基质子供体和受体氧原子之间的距离,对于通过增加反应物和产物质子振动波函数之间的重叠来促进氢隧穿至关重要。这种压缩通过这些界面酪氨酸残基的热构象波动发生。N733和R411被确定为分别可以与Y731和Y356形成氢键的关键残基,从而与直接PCET所需的Y731和Y356之间的氢键相互作用竞争。了解氢隧穿和构象运动在这种界面PCET反应中的作用,以及识别可能影响动力学的其他残基,对于靶向蛋白质工程调控RNR活性的努力至关重要。

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Hydrogen Tunneling and Conformational Motions in Nonadiabatic Proton-Coupled Electron Transfer between Interfacial Tyrosines in Ribonucleotide Reductase.核糖核苷酸还原酶中界面酪氨酸之间非绝热质子耦合电子转移过程中的氢隧穿和构象运动
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本文引用的文献

1
2.6-Å resolution cryo-EM structure of a class Ia ribonucleotide reductase trapped with mechanism-based inhibitor NCDP.NCDP 捕获的Ⅰa 类核糖核苷酸还原酶的 2.6-Å 分辨率冷冻电镜结构。
Proc Natl Acad Sci U S A. 2024 Nov 5;121(45):e2417157121. doi: 10.1073/pnas.2417157121. Epub 2024 Oct 30.
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Probing Nonadiabaticity of Proton-Coupled Electron Transfer in Ribonucleotide Reductase.探究核酶还原酶中质子耦合电子转移的非绝热性。
J Phys Chem Lett. 2024 Feb 15;15(6):1686-1693. doi: 10.1021/acs.jpclett.3c03552. Epub 2024 Feb 5.
3
Mechanism of proton-coupled electron transfer described with QM/MM implementation of coupled-perturbed density-functional tight-binding.
用耦合微扰密度泛函紧密结合的量子力学/分子力学实现来描述质子耦合电子转移的机制。
J Chem Phys. 2023 Mar 28;158(12):124107. doi: 10.1063/5.0137122.
4
Direct Proton-Coupled Electron Transfer between Interfacial Tyrosines in Ribonucleotide Reductase.核糖核苷酸还原酶中界面酪氨酸之间的直接质子耦合电子转移。
J Am Chem Soc. 2023 Mar 1;145(8):4784-4790. doi: 10.1021/jacs.2c13615. Epub 2023 Feb 20.
5
F Electron-Nuclear Double Resonance Reveals Interaction between Redox-Active Tyrosines across the α/β Interface of Ribonucleotide Reductase.F 电子-核双共振揭示了核糖核苷酸还原酶 α/β 界面上氧化还原活性酪氨酸之间的相互作用。
J Am Chem Soc. 2022 Jun 29;144(25):11270-11282. doi: 10.1021/jacs.2c02906. Epub 2022 Jun 2.
6
Role of Water in Proton-Coupled Electron Transfer between Tyrosine and Cysteine in Ribonucleotide Reductase.在核糖核苷酸还原酶中,酪氨酸和半胱氨酸之间质子耦合电子转移中水分子的作用。
J Am Chem Soc. 2022 Apr 27;144(16):7208-7214. doi: 10.1021/jacs.1c13455. Epub 2022 Apr 15.
7
Glutamate Mediates Proton-Coupled Electron Transfer Between Tyrosines 730 and 731 in Ribonucleotide Reductase.谷氨酸在核糖核苷酸还原酶中介导酪氨酸 730 和 731 之间的质子偶联电子转移。
J Am Chem Soc. 2021 Apr 28;143(16):6054-6059. doi: 10.1021/jacs.1c02152. Epub 2021 Apr 15.
8
Conformational Motions and Water Networks at the α/β Interface in Ribonucleotide Reductase.核苷酸还原酶中 α/β 界面的构象运动和水网络。
J Am Chem Soc. 2020 Aug 12;142(32):13768-13778. doi: 10.1021/jacs.0c04325. Epub 2020 Jul 28.
9
Ribonucleotide Reductases: Structure, Chemistry, and Metabolism Suggest New Therapeutic Targets.核苷酸还原酶:结构、化学和代谢提示新的治疗靶点。
Annu Rev Biochem. 2020 Jun 20;89:45-75. doi: 10.1146/annurev-biochem-013118-111843.
10
Structure of a trapped radical transfer pathway within a ribonucleotide reductase holocomplex.核糖核苷酸还原酶全酶复合物内捕获的自由基转移途径的结构。
Science. 2020 Apr 24;368(6489):424-427. doi: 10.1126/science.aba6794. Epub 2020 Mar 26.