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DcpS清除型去帽酶的机制与动力学分析

Mechanistic and kinetic analysis of the DcpS scavenger decapping enzyme.

作者信息

Liu Shin-Wu, Rajagopal Vaishnavi, Patel Smita S, Kiledjian Megerditch

机构信息

Department of Cell Biology and Neuroscience, Rutgers University, Piscataway, New Jersey 08854, USA.

出版信息

J Biol Chem. 2008 Jun 13;283(24):16427-36. doi: 10.1074/jbc.M800341200. Epub 2008 Apr 25.

Abstract

Decapping is an important process in the control of eukaryotic mRNA degradation. The scavenger decapping enzyme DcpS functions to clear the cell of cap structure following decay of the RNA body by catalyzing the hydrolysis of m(7)GpppN to m(7)Gp and ppN. Structural analysis has revealed that DcpS is a dimeric protein with a domain-swapped amino terminus. The protein dimer contains two cap binding/hydrolysis sites and displays a symmetric structure with both binding sites in the open conformation in the ligand-free state and an asymmetric conformation with one site open and one site closed in the ligand-bound state. The structural data are suggestive of a dynamic decapping mechanism where each monomer could alternate between an open and closed state. Using transient state kinetic studies, we show that both the rate-limiting step and rate of decapping are regulated by cap substrate. A regulatory mechanism is established by the intrinsic domain-swapped structure of the DcpS dimer such that the decapping reaction is very efficient at low cap substrate concentrations yet regulated with excess cap substrate. These data provide biochemical evidence to verify experimentally a dynamic and mutually exclusive cap hydrolysis activity of the two cap binding sites of DcpS and provide key insights into its regulation.

摘要

脱帽是真核生物mRNA降解控制中的一个重要过程。清除型脱帽酶DcpS的功能是在RNA主体降解后,通过催化m(7)GpppN水解为m(7)Gp和ppN,清除细胞中的帽结构。结构分析表明,DcpS是一种具有结构域交换氨基末端的二聚体蛋白。该蛋白二聚体包含两个帽结合/水解位点,在无配体状态下呈对称结构,两个结合位点均处于开放构象;在配体结合状态下呈不对称构象,一个位点开放,一个位点关闭。结构数据提示了一种动态脱帽机制,其中每个单体可以在开放和关闭状态之间交替。通过瞬态动力学研究,我们表明限速步骤和脱帽速率均受帽底物调控。DcpS二聚体固有的结构域交换结构建立了一种调控机制,使得脱帽反应在低帽底物浓度下非常高效,但在帽底物过量时受到调控。这些数据提供了生化证据,通过实验验证了DcpS两个帽结合位点的动态且相互排斥的帽水解活性,并为其调控提供了关键见解。

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