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2
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本文引用的文献

1
A Toolkit for the Analysis of Free-Energy Perturbation Calculations.自由能微扰计算分析工具包
J Chem Theory Comput. 2012 Aug 14;8(8):2606-16. doi: 10.1021/ct300242f. Epub 2012 Jul 31.
2
RNA degradation paths in a 12-subunit nuclear exosome complex.十二亚基核小体 exosome 复合物中的 RNA 降解途径。
Nature. 2015 Aug 6;524(7563):54-8. doi: 10.1038/nature14865. Epub 2015 Jul 29.
3
Mechanism of substrate translocation by a ring-shaped ATPase motor at millisecond resolution.毫秒级分辨率下环形ATP酶马达介导底物转运的机制
J Am Chem Soc. 2015 Mar 4;137(8):3031-40. doi: 10.1021/ja512605w. Epub 2015 Feb 19.
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The exosome-binding factors Rrp6 and Rrp47 form a composite surface for recruiting the Mtr4 helicase.外泌体结合因子Rrp6和Rrp47形成一个复合表面,用于招募Mtr4解旋酶。
EMBO J. 2014 Dec 1;33(23):2829-46. doi: 10.15252/embj.201488757. Epub 2014 Oct 15.
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Thermodynamics of Deca-alanine Folding in Water.水中十聚丙氨酸折叠的热力学
J Chem Theory Comput. 2014 Jul 8;10(7):2836-2844. doi: 10.1021/ct5002076. Epub 2014 May 9.
6
Structure of an Rrp6-RNA exosome complex bound to poly(A) RNA.RRp6-RNA 外切体复合物与 poly(A) RNA 结合的结构。
Nature. 2014 Jul 24;511(7510):435-9. doi: 10.1038/nature13406. Epub 2014 Jul 6.
7
Generalized Scalable Multiple Copy Algorithms for Molecular Dynamics Simulations in NAMD.用于NAMD中分子动力学模拟的广义可扩展多拷贝算法
Comput Phys Commun. 2014 Mar;185(3):908-916. doi: 10.1016/j.cpc.2013.12.014.
8
Activation pathway of Src kinase reveals intermediate states as targets for drug design.Src激酶的激活途径揭示了作为药物设计靶点的中间状态。
Nat Commun. 2014 Mar 3;5:3397. doi: 10.1038/ncomms4397.
9
Multidimensional Replica Exchange Molecular Dynamics Yields a Converged Ensemble of an RNA Tetranucleotide.多维复制交换分子动力学产生RNA四核苷酸的收敛系综。
J Chem Theory Comput. 2014 Jan 14;10(1):492-499. doi: 10.1021/ct400862k. Epub 2013 Nov 15.
10
The RNA exosome and proteasome: common principles of degradation control.RNA 外切体和蛋白酶体:降解控制的共同原则。
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RNA外切体复合物活性亚基中3'至5'RNA连续易位的分子机制

Molecular Mechanism of Processive 3' to 5' RNA Translocation in the Active Subunit of the RNA Exosome Complex.

作者信息

Vuković Lela, Chipot Christophe, Makino Debora L, Conti Elena, Schulten Klaus

机构信息

Department of Chemistry, University of Texas at El Paso , El Paso, Texas 79968, United States.

Laboratoire International Associé CNRS-University of Illinois, Université de Lorraine , Vandoeuvre-lès-Nancy 54000, France.

出版信息

J Am Chem Soc. 2016 Mar 30;138(12):4069-78. doi: 10.1021/jacs.5b12065. Epub 2016 Mar 21.

DOI:10.1021/jacs.5b12065
PMID:26928279
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4988868/
Abstract

Recent experimental studies revealed structural details of 3' to 5' degradation of RNA molecules, performed by the exosome complex. ssRNA is channeled through its multisubunit ring-like core into the active site tunnel of its key exonuclease subunit Rrp44, which acts both as an enzyme and a motor. Even in isolation, Rrp44 can pull and sequentially cleave RNA nucleotides, one at a time, without any external energy input and release a final 3-5 nucleotide long product. Using molecular dynamics simulations, we identify the main factors that control these processes. Our free energy calculations reveal that RNA transfer from solution into the active site of Rrp44 is highly favorable, but dependent on the length of the RNA strand. While RNA strands formed by 5 nucleotides or more correspond to a decreasing free energy along the translocation coordinate toward the cleavage site, a 4-nucleotide RNA experiences a free energy barrier along the same direction, potentially leading to incomplete cleavage of ssRNA and the release of short (3-5) nucleotide products. We provide new insight into how Rrp44 catalyzes a localized enzymatic reaction and performs an action distributed over several RNA nucleotides, leading eventually to the translocation of whole RNA segments into the position suitable for cleavage.

摘要

最近的实验研究揭示了由外切体复合物进行的RNA分子3'至5'降解的结构细节。单链RNA(ssRNA)通过其多亚基环状核心进入其关键外切核酸酶亚基Rrp44的活性位点通道,Rrp44兼具酶和分子马达的功能。即使单独存在,Rrp44也能拉动并依次切割RNA核苷酸,一次一个,无需任何外部能量输入,并释放出最终长度为3 - 5个核苷酸的产物。通过分子动力学模拟,我们确定了控制这些过程的主要因素。我们的自由能计算表明,RNA从溶液转移到Rrp44的活性位点是非常有利的,但这取决于RNA链的长度。虽然由5个或更多核苷酸形成的RNA链沿着向切割位点的易位坐标对应着自由能的降低,但4个核苷酸的RNA在同一方向上经历自由能障碍,这可能导致ssRNA的不完全切割并释放短(3 - 5)核苷酸产物。我们对Rrp44如何催化局部酶促反应以及如何对分布在几个RNA核苷酸上的作用进行操作提供了新的见解,最终导致整个RNA片段易位到适合切割的位置。