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本文引用的文献

1
Conformational rearrangements of the C1 ring in KaiC measure the timing of assembly with KaiB.C1 环构象重排可测量 KaiC 与 KaiB 组装的时间。
Sci Rep. 2018 Jun 11;8(1):8803. doi: 10.1038/s41598-018-27131-8.
2
Minimal tool set for a prokaryotic circadian clock.原核生物钟的最小工具集。
BMC Evol Biol. 2017 Jul 21;17(1):169. doi: 10.1186/s12862-017-0999-7.
3
Structures of the cyanobacterial circadian oscillator frozen in a fully assembled state.蓝藻生物钟振荡器的全组装状态冷冻结构。
Science. 2017 Mar 17;355(6330):1181-1184. doi: 10.1126/science.aag3218. Epub 2017 Mar 16.
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Structural basis of the day-night transition in a bacterial circadian clock.细菌生物钟中昼夜转换的结构基础。
Science. 2017 Mar 17;355(6330):1174-1180. doi: 10.1126/science.aag2516. Epub 2017 Mar 16.
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Assessing heterogeneity in oligomeric AAA+ machines.评估寡聚AAA+机器中的异质性。
Cell Mol Life Sci. 2017 Mar;74(6):1001-1018. doi: 10.1007/s00018-016-2374-z. Epub 2016 Sep 26.
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Eigenvector method for umbrella sampling enables error analysis.用于伞形抽样的特征向量方法可进行误差分析。
J Chem Phys. 2016 Aug 28;145(8):084115. doi: 10.1063/1.4960649.
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Revealing Atomic-Level Mechanisms of Protein Allostery with Molecular Dynamics Simulations.利用分子动力学模拟揭示蛋白质变构的原子水平机制
PLoS Comput Biol. 2016 Jun 10;12(6):e1004746. doi: 10.1371/journal.pcbi.1004746. eCollection 2016 Jun.
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CHARMM-GUI Input Generator for NAMD, GROMACS, AMBER, OpenMM, and CHARMM/OpenMM Simulations Using the CHARMM36 Additive Force Field.使用CHARMM36加和力场的NAMD、GROMACS、AMBER、OpenMM和CHARMM/OpenMM模拟的CHARMM-GUI输入生成器。
J Chem Theory Comput. 2016 Jan 12;12(1):405-13. doi: 10.1021/acs.jctc.5b00935. Epub 2015 Dec 3.
9
Protein-Protein Interactions in the Cyanobacterial Circadian Clock: Structure of KaiA Dimer in Complex with C-Terminal KaiC Peptides at 2.8 Å Resolution.蓝藻生物钟中的蛋白质-蛋白质相互作用:与C端KaiC肽形成复合物的KaiA二聚体的2.8埃分辨率结构
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Circadian rhythms. A protein fold switch joins the circadian oscillator to clock output in cyanobacteria.昼夜节律。一种蛋白质折叠开关将蓝藻中的昼夜振荡器与时钟输出连接起来。
Science. 2015 Jul 17;349(6245):324-8. doi: 10.1126/science.1260031. Epub 2015 Jun 25.

分子动力学模拟揭示了生物钟蛋白 KaiC 释放核苷酸的原子分辨率功能见解。

Molecular dynamics simulations of nucleotide release from the circadian clock protein KaiC reveal atomic-resolution functional insights.

机构信息

Graduate Program in Biophysical Sciences, The University of Chicago, Chicago, IL 60637.

Department of Chemistry, The University of Chicago, Chicago, IL 60637.

出版信息

Proc Natl Acad Sci U S A. 2018 Dec 4;115(49):E11475-E11484. doi: 10.1073/pnas.1812555115. Epub 2018 Nov 15.

DOI:10.1073/pnas.1812555115
PMID:30442665
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6298084/
Abstract

The cyanobacterial clock proteins KaiA, KaiB, and KaiC form a powerful system to study the biophysical basis of circadian rhythms, because an in vitro mixture of the three proteins is sufficient to generate a robust ∼24-h rhythm in the phosphorylation of KaiC. The nucleotide-bound states of KaiC critically affect both KaiB binding to the N-terminal domain (CI) and the phosphotransfer reactions that (de)phosphorylate the KaiC C-terminal domain (CII). However, the nucleotide exchange pathways associated with transitions among these states are poorly understood. In this study, we integrate recent advances in molecular dynamics methods to elucidate the structure and energetics of the pathway for Mg·ADP release from the CII domain. We find that nucleotide release is coupled to large-scale conformational changes in the KaiC hexamer. Solvating the nucleotide requires widening the subunit interface leading to the active site, which is linked to extension of the A-loop, a structure implicated in KaiA binding. These results provide a molecular hypothesis for how KaiA acts as a nucleotide exchange factor. In turn, structural parallels between the CI and CII domains suggest a mechanism for allosteric coupling between the domains. We relate our results to structures observed for other hexameric ATPases, which perform diverse functions.

摘要

蓝藻时钟蛋白 KaiA、KaiB 和 KaiC 形成了一个强大的系统,可用于研究生物钟节律的生物物理基础,因为这三种蛋白质的体外混合物足以在 KaiC 的磷酸化中产生强大的约 24 小时节律。KaiC 的核苷酸结合状态对 KaiB 与 N 端结构域(CI)的结合以及使 KaiC C 端结构域(CII)去磷酸化的磷酸转移反应都有至关重要的影响。然而,与这些状态之间的转变相关的核苷酸交换途径还知之甚少。在这项研究中,我们整合了分子动力学方法的最新进展,以阐明从 CII 结构域释放 Mg·ADP 的途径的结构和能量学。我们发现核苷酸的释放与 KaiC 六聚体的大规模构象变化相关。水合核苷酸需要扩大导致活性位点的亚基界面,这与 A 环的延伸有关,A 环是与 KaiA 结合有关的结构。这些结果为 KaiA 如何作为核苷酸交换因子提供了一个分子假说。反过来,CI 和 CII 结构域之间的结构相似性表明了两个结构域之间的变构耦合机制。我们将我们的结果与其他六聚体 ATP 酶的结构进行了比较,这些酶具有不同的功能。