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柯萨奇病毒B4 2A蛋白酶的结构与动力学,一种与心脏病病因相关的酶

Structure and dynamics of coxsackievirus B4 2A proteinase, an enyzme involved in the etiology of heart disease.

作者信息

Baxter Nicola J, Roetzer Andreas, Liebig Hans-Dieter, Sedelnikova Svetlana E, Hounslow Andrea M, Skern Tim, Waltho Jonathan P

机构信息

Krebs Institute for Biomolecular Research, Department of Molecular Biology and Biotechnology, University of Sheffield, Firth Court, Western Bank, Sheffield, S10 2TN, United Kingdom.

出版信息

J Virol. 2006 Feb;80(3):1451-62. doi: 10.1128/JVI.80.3.1451-1462.2006.

Abstract

The 2A proteinases (2A(pro)) from the picornavirus family are multifunctional cysteine proteinases that perform essential roles during viral replication, involving viral polyprotein self-processing and shutting down host cell protein synthesis through cleavage of the eukaryotic initiation factor 4G (eIF4G) proteins. Coxsackievirus B4 (CVB4) 2A(pro) also cleaves heart muscle dystrophin, leading to cytoskeletal dysfunction and the symptoms of human acquired dilated cardiomyopathy. We have determined the solution structure of CVB4 2A(pro) (extending in an N-terminal direction to include the C-terminal eight residues of CVB4 VP1, which completes the VP1-2A(pro) substrate region). In terms of overall fold, it is similar to the crystal structure of the mature human rhinovirus serotype 2 (HRV2) 2A(pro), but the relatively low level (40%) of sequence identity leads to a substantially different surface. We show that differences in the cI-to-eI2 loop between HRV2 and CVB4 2A(pro) translate to differences in the mechanism of eIF4GI recognition. Additionally, the nuclear magnetic resonance relaxation properties of CVB4 2A(pro), particularly of residues G1 to S7, F64 to S67, and P107 to G111, reveal that the substrate region is exchanging in and out of a conformation in which it occupies the active site with association and dissociation rates in the range of 100 to 1,000 s(-1). This exchange influences the conformation of the active site and points to a mechanism for how self-processing can occur efficiently while product inhibition is avoided.

摘要

微小核糖核酸病毒科的2A蛋白酶(2A(pro))是多功能半胱氨酸蛋白酶,在病毒复制过程中发挥着重要作用,包括病毒多聚蛋白的自我加工以及通过切割真核起始因子4G(eIF4G)蛋白来阻断宿主细胞蛋白质合成。柯萨奇病毒B4(CVB4)2A(pro)还能切割心肌肌营养不良蛋白,导致细胞骨架功能障碍以及人类获得性扩张型心肌病的症状。我们已经确定了CVB4 2A(pro)的溶液结构(在N端方向延伸,包括CVB4 VP1的C端八个残基,从而完整了VP1-2A(pro)底物区域)。就整体折叠而言,它与成熟的人鼻病毒2型(HRV2)2A(pro)的晶体结构相似,但相对较低的序列同一性水平(40%)导致其表面有很大差异。我们表明,HRV2和CVB4 2A(pro)之间cI到eI2环的差异转化为eIF4GI识别机制的差异。此外,CVB4 2A(pro)的核磁共振弛豫特性,特别是G1到S7、F64到S67以及P107到G111残基的弛豫特性,揭示了底物区域以100到1000 s(-1)范围内的缔合和解离速率进出占据活性位点的构象。这种交换影响活性位点的构象,并指出了一种在避免产物抑制的同时如何有效进行自我加工的机制。

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