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真核生物缺口封闭RNA连接酶的结构与双金属机制

Structure and two-metal mechanism of a eukaryal nick-sealing RNA ligase.

作者信息

Unciuleac Mihaela-Carmen, Goldgur Yehuda, Shuman Stewart

机构信息

Molecular Biology Program, Sloan-Kettering Institute, New York, NY 10065;

Structural Biology Program, Sloan-Kettering Institute, New York, NY 10065.

出版信息

Proc Natl Acad Sci U S A. 2015 Nov 10;112(45):13868-73. doi: 10.1073/pnas.1516536112. Epub 2015 Oct 28.

Abstract

ATP-dependent RNA ligases are agents of RNA repair that join 3'-OH and 5'-PO4 RNA ends. Naegleria gruberi RNA ligase (NgrRnl) exemplifies a family of RNA nick-sealing enzymes found in bacteria, viruses, and eukarya. Crystal structures of NgrRnl at three discrete steps along the reaction pathway-covalent ligase-(lysyl-Nζ)-AMP•Mn(2+) intermediate; ligase•ATP•(Mn(2+))2 Michaelis complex; and ligase•Mn(2+) complex-highlight a two-metal mechanism of nucleotidyl transfer, whereby (i) an enzyme-bound "catalytic" metal coordination complex lowers the pKa of the lysine nucleophile and stabilizes the transition state of the ATP α phosphate; and (ii) a second metal coordination complex bridges the β- and γ-phosphates. The NgrRnl N domain is a distinctively embellished oligonucleotide-binding (OB) fold that engages the γ-phosphate and associated metal complex and orients the pyrophosphate leaving group for in-line catalysis with stereochemical inversion at the AMP phosphate. The unique domain architecture of NgrRnl fortifies the theme that RNA ligases have evolved many times, and independently, by fusions of a shared nucleotidyltransferase domain to structurally diverse flanking modules. The mechanistic insights to lysine adenylylation gained from the NgrRnl structures are likely to apply broadly to the covalent nucleotidyltransferase superfamily of RNA ligases, DNA ligases, and RNA capping enzymes.

摘要

ATP 依赖性 RNA 连接酶是参与 RNA 修复的因子,可连接 3'-OH 和 5'-PO4 RNA 末端。格氏变形虫 RNA 连接酶(NgrRnl)是在细菌、病毒和真核生物中发现的一类 RNA 切口封闭酶的典型代表。NgrRnl 在反应途径中的三个离散步骤的晶体结构——共价连接酶-(赖氨酰-Nζ)-AMP•Mn(2+)中间体;连接酶•ATP•(Mn(2+))2 米氏复合物;以及连接酶•Mn(2+)复合物——突出了核苷酸转移的双金属机制,即:(i)酶结合的“催化”金属配位复合物降低了赖氨酸亲核试剂的 pKa 并稳定了 ATP α 磷酸的过渡态;(ii)第二个金属配位复合物桥接 β-和 γ-磷酸。NgrRnl 的 N 结构域是一种独特修饰的寡核苷酸结合(OB)折叠,它与 γ-磷酸和相关金属复合物结合,并使焦磷酸离去基团定向,以便在 AMP 磷酸处进行立体化学反转的同向催化。NgrRnl 独特的结构域架构强化了这样一个观点,即 RNA 连接酶通过将共享的核苷酸转移酶结构域与结构多样的侧翼模块融合,已经多次独立进化。从 NgrRnl 结构中获得的关于赖氨酸腺苷酸化的机制见解可能广泛适用于 RNA 连接酶、DNA 连接酶和 RNA 加帽酶的共价核苷酸转移酶超家族。

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