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本文引用的文献

1
Proteasomal and Autophagic Degradation Systems.蛋白酶体和自噬降解系统。
Annu Rev Biochem. 2017 Jun 20;86:193-224. doi: 10.1146/annurev-biochem-061516-044908. Epub 2017 May 1.
2
Proteasome inhibitors in cancer therapy.蛋白酶体抑制剂在癌症治疗中的应用。
Nat Rev Clin Oncol. 2017 Jul;14(7):417-433. doi: 10.1038/nrclinonc.2016.206. Epub 2017 Jan 24.
3
Structural Analysis of the Bacterial Proteasome Activator Bpa in Complex with the 20S Proteasome.细菌蛋白酶体激活剂 Bpa 与 20S 蛋白酶体复合物的结构分析。
Structure. 2016 Dec 6;24(12):2138-2151. doi: 10.1016/j.str.2016.10.008. Epub 2016 Nov 10.
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A Dynamic molecular basis for malfunction in disease mutants of p97/VCP.p97/VCP疾病突变体功能异常的动态分子基础。
Elife. 2016 Nov 9;5:e20143. doi: 10.7554/eLife.20143.
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Structural basis for dynamic regulation of the human 26S proteasome.人类26S蛋白酶体动态调节的结构基础
Proc Natl Acad Sci U S A. 2016 Nov 15;113(46):12991-12996. doi: 10.1073/pnas.1614614113. Epub 2016 Oct 21.
6
Structural basis for the antifolding activity of a molecular chaperone.分子伴侣抗折叠活性的结构基础。
Nature. 2016 Sep 8;537(7619):202-206. doi: 10.1038/nature18965. Epub 2016 Aug 8.
7
An atomic structure of the human 26S proteasome.人类 26S 蛋白酶体的原子结构。
Nat Struct Mol Biol. 2016 Sep;23(9):778-85. doi: 10.1038/nsmb.3273. Epub 2016 Jul 18.
8
Structure of the human 26S proteasome at a resolution of 3.9 Å.人类26S蛋白酶体的结构,分辨率为3.9埃。
Proc Natl Acad Sci U S A. 2016 Jul 12;113(28):7816-21. doi: 10.1073/pnas.1608050113. Epub 2016 Jun 24.
9
Open-gate mutants of the mammalian proteasome show enhanced ubiquitin-conjugate degradation.哺乳动物蛋白酶体的开放门突变体显示出增强的泛素缀合物降解能力。
Nat Commun. 2016 Mar 9;7:10963. doi: 10.1038/ncomms10963.
10
Atomic structure of the 26S proteasome lid reveals the mechanism of deubiquitinase inhibition.26S蛋白酶体盖子的原子结构揭示了去泛素化酶抑制机制。
Elife. 2016 Jan 8;5:e13027. doi: 10.7554/eLife.13027.

通过 NMR 光谱法探究蛋白酶体核心颗粒门控的协同性。

Probing the cooperativity of proteasome core particle gating by NMR spectroscopy.

机构信息

Department of Molecular Genetics, University of Toronto, Toronto, ON M5S 1A8, Canada.

Department of Biochemistry, University of Toronto, Toronto, ON M5S 1A8, Canada.

出版信息

Proc Natl Acad Sci U S A. 2017 Nov 14;114(46):E9846-E9854. doi: 10.1073/pnas.1712297114. Epub 2017 Oct 30.

DOI:10.1073/pnas.1712297114
PMID:29087330
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5699070/
Abstract

The 20S proteasome core particle (20S CP) plays an integral role in cellular homeostasis by degrading proteins no longer required for function. The process is, in part, controlled via gating residues localized to the ends of the heptameric barrel-like CP structure that occlude substrate entry pores, preventing unregulated degradation of substrates that might otherwise enter the proteasome. Previously, we showed that the N-terminal residues of the α-subunits of the CP from the archaeon are arranged such that, on average, two of the seven termini are localized inside the lumen of the proteasome, thereby plugging the entry pore and functioning as a gate. However, the mechanism of gating remains unclear. Using solution NMR and a labeling procedure in which a series of mixed proteasome rings are prepared such that the percentage of gate-containing subunits is varied, we address the energetics of gating and establish whether gating is a cooperative process involving the concerted action of residues from more than a single protomer. Our results establish that the intrinsic probability of a gate entering the lumen favors the state by close to 20-fold, that entry of each gate is noncooperative, with the number of gates that can be accommodated inside the lumen a function of the substrate entry pore size and the bulkiness of the gating residues. Insight into the origin of the high affinity for the state is obtained from spin-relaxation experiments. More generally, our approach provides an avenue for dissecting interactions of individual protomers in homo-oligomeric complexes.

摘要

20S 蛋白酶体核心颗粒(20S CP)通过降解不再需要的功能蛋白,在细胞内稳态中发挥着重要作用。这一过程部分受到位于七聚体桶状 CP 结构末端的门控残基控制,这些残基阻塞了底物进入孔,防止不受调控的底物降解,否则这些底物可能会进入蛋白酶体。之前,我们表明,来自古菌的 CP 的 α 亚基的 N 端残基排列方式使得,平均而言,七个末端中的两个定位于蛋白酶体腔的内部,从而堵塞了入口孔并起到门的作用。然而,门控的机制仍不清楚。我们使用溶液 NMR 技术和一种标记程序,其中制备了一系列混合蛋白酶体环,使含有门控亚基的百分比发生变化,从而解决了门控的能量学问题,并确定了门控是否是一个涉及来自单个以上原体的残基协同作用的协同过程。我们的结果表明,门进入腔的固有概率有利于状态近 20 倍,每个门的进入是非协同的,腔内可容纳的门数量是底物进入孔大小和门控残基体积的函数。自旋弛豫实验为了解高亲和力的起源提供了线索。更一般地说,我们的方法为剖析同型寡聚复合物中单个原体的相互作用提供了一种途径。