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本文引用的文献

1
The ATPase cycle mechanism of the DEAD-box rRNA helicase, DbpA.DEAD盒rRNA解旋酶DbpA的ATP酶循环机制
J Mol Biol. 2008 Mar 14;377(1):193-205. doi: 10.1016/j.jmb.2007.12.046. Epub 2007 Dec 28.
2
Structural insights into the exon junction complex.外显子连接复合体的结构见解。
Curr Opin Struct Biol. 2008 Feb;18(1):112-9. doi: 10.1016/j.sbi.2007.11.002.
3
The DEAD-box protein Dbp5 controls mRNA export by triggering specific RNA:protein remodeling events.DEAD盒蛋白Dbp5通过触发特定的RNA:蛋白质重塑事件来控制mRNA输出。
Mol Cell. 2007 Dec 14;28(5):850-9. doi: 10.1016/j.molcel.2007.09.019.
4
MLN51 stimulates the RNA-helicase activity of eIF4AIII.MLN51 可刺激 eIF4AIII 的 RNA 解旋酶活性。
PLoS One. 2007 Mar 21;2(3):e303. doi: 10.1371/journal.pone.0000303.
5
UvrD helicase unwinds DNA one base pair at a time by a two-part power stroke.UvrD解旋酶通过两步动力冲程每次解开一个碱基对的DNA。
Cell. 2006 Dec 29;127(7):1349-60. doi: 10.1016/j.cell.2006.10.049.
6
The DEAD-box protein Ded1 unwinds RNA duplexes by a mode distinct from translocating helicases.DEAD盒蛋白Ded1通过一种不同于易位解旋酶的方式解开RNA双链体。
Nat Struct Mol Biol. 2006 Nov;13(11):981-6. doi: 10.1038/nsmb1165. Epub 2006 Oct 29.
7
Structure of the exon junction core complex with a trapped DEAD-box ATPase bound to RNA.外显子连接核心复合体的结构,其中一个被困的DEAD盒ATP酶与RNA结合。
Science. 2006 Sep 29;313(5795):1968-72. doi: 10.1126/science.1131981. Epub 2006 Aug 24.
8
The crystal structure of the exon junction complex reveals how it maintains a stable grip on mRNA.外显子连接复合体的晶体结构揭示了它如何在信使核糖核酸(mRNA)上保持稳定的附着。
Cell. 2006 Aug 25;126(4):713-25. doi: 10.1016/j.cell.2006.08.006.
9
TBC-domain GAPs for Rab GTPases accelerate GTP hydrolysis by a dual-finger mechanism.Rab GTP酶的TBC结构域GAP通过双指机制加速GTP水解。
Nature. 2006 Jul 20;442(7100):303-6. doi: 10.1038/nature04847.
10
Activation of the DExD/H-box protein Dbp5 by the nuclear-pore protein Gle1 and its coactivator InsP6 is required for mRNA export.核孔蛋白Gle1及其共激活因子InsP6对DExD/H盒蛋白Dbp5的激活是mRNA输出所必需的。
Nat Cell Biol. 2006 Jul;8(7):668-76. doi: 10.1038/ncb1424. Epub 2006 Jun 18.

外显子连接复合体中ATP周转抑制的机制。

Mechanism of ATP turnover inhibition in the EJC.

作者信息

Nielsen Klaus H, Chamieh Hala, Andersen Christian B F, Fredslund Folmer, Hamborg Kristiane, Le Hir Hervé, Andersen Gregers R

机构信息

Department of Molecular Biology, University of Aarhus, DK-8000 Aarhus, Denmark.

出版信息

RNA. 2009 Jan;15(1):67-75. doi: 10.1261/rna.1283109. Epub 2008 Nov 25.

DOI:10.1261/rna.1283109
PMID:19033377
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2612766/
Abstract

The exon junction complex (EJC) is deposited onto spliced mRNAs and is involved in many aspects of mRNA function. We have recently reconstituted and solved the crystal structure of the EJC core made of MAGOH, Y14, the most conserved portion of MLN51, and the DEAD-box ATPase eIF4AIII bound to RNA in the presence of an ATP analog. The heterodimer MAGOH/Y14 inhibits ATP turnover by eIF4AIII, thereby trapping the EJC core onto RNA, but the exact mechanism behind this remains unclear. Here, we present the crystal structure of the EJC core bound to ADP-AIF(3), the first structure of a DEAD-box helicase in the transition-mimicking state during ATP hydrolysis. It reveals a dissociative transition state geometry and suggests that the locking of the EJC onto the RNA by MAGOH/Y14 is not caused by preventing ATP hydrolysis. We further show that ATP can be hydrolyzed inside the EJC, demonstrating that MAGOH/Y14 acts by locking the conformation of the EJC, so that the release of inorganic phosphate, ADP, and RNA is prevented. Unifying features of ATP hydrolysis are revealed by comparison of our structure with the EJC-ADPNP structure and other helicases. The reconstitution of a transition state mimicking complex is not limited to the EJC and eIF4AIII as we were also able to reconstitute the complex Dbp5-RNA-ADP-AlF(3), suggesting that the use of ADP-AlF(3) may be a valuable tool for examining DEAD-box ATPases in general.

摘要

外显子连接复合体(EJC)会沉积到剪接后的mRNA上,并参与mRNA功能的多个方面。我们最近重构并解析了由MAGOH、Y14、MLN51最保守部分以及在ATP类似物存在下与RNA结合的DEAD盒ATP酶eIF4AIII组成的EJC核心的晶体结构。异二聚体MAGOH/Y14会抑制eIF4AIII的ATP周转,从而将EJC核心捕获到RNA上,但其背后的确切机制仍不清楚。在此,我们展示了与ADP - AlF(3)结合的EJC核心的晶体结构,这是DEAD盒解旋酶在ATP水解过程中模拟过渡态的首个结构。它揭示了解离性过渡态几何结构,并表明MAGOH/Y14将EJC锁定在RNA上并非是通过阻止ATP水解所致。我们进一步表明ATP可在EJC内部水解,这证明MAGOH/Y14通过锁定EJC的构象发挥作用,从而阻止无机磷酸、ADP和RNA的释放。通过将我们的结构与EJC - ADPNP结构及其他解旋酶进行比较,揭示了ATP水解的统一特征。模拟过渡态复合体的重构并不局限于EJC和eIF4AIII,因为我们还能够重构Dbp5 - RNA - ADP - AlF(3)复合体,这表明使用ADP - AlF(3)可能是一般用于研究DEAD盒ATP酶的一种有价值的工具。