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烟草花叶病毒装配机制的研究。

Studies on the mechanism of assembly of tobacco mosaic virus.

作者信息

Schuster T M, Scheele R B, Adams M L, Shire S J, Steckert J J, Potschka M

出版信息

Biophys J. 1980 Oct;32(1):313-29. doi: 10.1016/S0006-3495(80)84959-9.

Abstract

Sedimentation and proton binding studies on the endothermic self-association of tobacco mosaic virus (TMV) protein indicate that the so-called "20S" sedimenting protein is an interaction system involving at least the 34-subunit two-turn yield cylindrical disk aggregate and the 49-subunit three-turn helical rod. The pH dependence of this overall equilibrium suggests that disk formation is proton-linked through the binding of protons to the two-turn helix which is not present as significant concentrations near pH 7. There is a temperature-induced intramolecular conformation change in the protein leading to a difference spectrum which is complete in 5 x 10(-6) s at pH 7 and 20 degrees C and is dominated at 300 nm by tryptophan residues. Kinetics measurements of protein polymerization, from 10(-6) to 10(3) s, reveal three relaxation processes at pH 7.0, 20 degrees C, 0.10 M ionic strength K (H) PO4. The fastest relaxation time is a few milliseconds and represents reactions within the 4S protein distribution. The second fastest relaxation is 50-100 x 10(-3) s and represents elementary polymerization steps involved in the formation of the approximately 20 S protein. Analysis of the slowest relaxation, approximately 5 x 10(4) s, suggests that this very slow formation of approximately 20 S protein may be dominated by some first order process in the overall dissociation of approximately 20S protein. Sedimentation measurements of the rate of TMV reconstitution, under the same conditions, show by direct measurements of 4S and approximately 20S incorporation at various 4S to approximately 20S weight ratios that the relative rate of approximately 20S incorporation decreases almost linearly, from 0 to 50% 4S. There appears to be one or more regions of TMV-RNA, approximately 1-1.5 kilobases long, which incorporates approximately 20S protein exclusively. Solutions of approximately 95-100% approximately 20S protein have been prepared for the first time and used for reconstitution with RNA. Such protein solutions yield full size TMV, but at a slower rate than if 4S protein is added. Thus the elongation reaction in TMV assembly, following nucleation with approximately 20S protein, is not exclusively dependent upon the presence of either 4S or approximately 20S protein aggregates. The initial, maximum, rate of reconstitution increases about threefold when the protein composition is changed from 5% to 30% 4S protein, at constant total protein concentration at pH 7.0, 20 degrees C in 0.10 M ionic strength K (H)PO4. The probable binding frame at the internal assembly nucleation site of TMV-RNA has been determined by measuring the association constants for the binding of various trinucleoside diphosphates to helical TMV protein rods. The -CAG-AAG-AAG-sequence at the nucleation site is capable of providing at least 10-14 kcal/mol of sites of binding free energy for the nucleation event in TMV self-assembly.

摘要

对烟草花叶病毒(TMV)蛋白吸热自缔合的沉降和质子结合研究表明,所谓的“20S”沉降蛋白是一个相互作用系统,至少涉及34亚基的两圈产率圆柱形盘状聚集体和49亚基的三圈螺旋杆。这种整体平衡的pH依赖性表明,盘的形成通过质子与两圈螺旋的结合而与质子相关联,在pH 7附近不存在显著浓度的两圈螺旋。蛋白质中存在温度诱导的分子内构象变化,导致在pH 7和20℃下5×10⁻⁶ s内完成的差光谱,在300 nm处主要由色氨酸残基主导。在pH 7.0、20℃、0.10 M离子强度的K(H)PO₄条件下,从10⁻⁶到10³ s对蛋白质聚合的动力学测量揭示了三个弛豫过程。最快的弛豫时间为几毫秒,代表4S蛋白质分布内的反应。第二快的弛豫时间为50 - 100×10⁻³ s,代表参与形成约20S蛋白质的基本聚合步骤。对最慢弛豫时间约5×10⁴ s的分析表明,这种约20S蛋白质的非常缓慢形成可能由约20S蛋白质整体解离中的某些一级过程主导。在相同条件下对TMV重组速率的沉降测量通过直接测量不同4S与约20S重量比下4S和约20S的掺入情况表明,约20S掺入的相对速率几乎呈线性下降,从0到50% 4S。TMV - RNA似乎有一个或多个约1 - 1.5千碱基长的区域,专门掺入约20S蛋白质。首次制备了约95 - 100%约20S蛋白质的溶液,并用于与RNA重组。这种蛋白质溶液产生全尺寸的TMV,但速率比添加4S蛋白质时慢。因此,在用约20S蛋白质成核后,TMV组装中的延伸反应并不完全依赖于4S或约20S蛋白质聚集体的存在。当在pH 7.0、20℃、0.10 M离子强度的K(H)PO₄条件下,总蛋白质浓度恒定时,将蛋白质组成从5% 4S蛋白质变为30% 4S蛋白质,重组的初始最大速率增加约三倍。通过测量各种三核苷二磷酸与螺旋状TMV蛋白质杆的结合常数,确定了TMV - RNA内部组装成核位点的可能结合框架。成核位点处的 - CAG - AAG - AAG - 序列能够为TMV自组装中的成核事件提供至少10 - 14 kcal/mol的结合自由能位点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/66fe/1327310/a3cef6baa519/biophysj00252-0336-a.jpg

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