首页> 外文OA文献 >A Single Mutation in the Carboxy Terminus of Reovirus Outer-Capsid Protein σ3 Confers Enhanced Kinetics of σ3 Proteolysis, Resistance to Inhibitors of Viral Disassembly, and Alterations in σ3 Structure
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A Single Mutation in the Carboxy Terminus of Reovirus Outer-Capsid Protein σ3 Confers Enhanced Kinetics of σ3 Proteolysis, Resistance to Inhibitors of Viral Disassembly, and Alterations in σ3 Structure

机译:呼肠孤病毒外衣壳蛋白σ3的羧基末端的单个突变赋予增强的σ3蛋白水解动力学,对病毒分解抑制剂的抗性以及σ3结构的改变。

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摘要

Mammalian reoviruses undergo acid-dependent proteolytic disassembly within endosomes, resulting in formation of infectious subvirion particles (ISVPs). ISVPs are obligate intermediates in reovirus disassembly that mediate viral penetration into the cytoplasm. The initial biochemical event in the reovirus disassembly pathway is the proteolysis of viral outer-capsid protein σ3. Mutant reoviruses selected during persistent infection of murine L929 cells (PI viruses) demonstrate enhanced kinetics of viral disassembly and resistance to inhibitors of endocytic acidification and proteolysis. To identify sequences in σ3 that modulate acid-dependent and protease-dependent steps in reovirus disassembly, the σ3 proteins of wild-type strain type 3 Dearing; PI viruses L/C, PI 2A1, and PI 3-1; and four novel mutant σ3 proteins were expressed in insect cells and used to recoat ISVPs. Treatment of recoated ISVPs (rISVPs) with either of the endocytic proteases cathepsin L or cathepsin D demonstrated that an isolated tyrosine-to-histidine mutation at amino acid 354 (Y354H) enhanced σ3 proteolysis during viral disassembly. Yields of rISVPs containing Y354H in σ3 were substantially greater than those of rISVPs lacking this mutation after growth in cells treated with either acidification inhibitor ammonium chloride or cysteine protease inhibitor E64. Image reconstructions of electron micrographs of virus particles containing wild-type or mutant σ3 proteins revealed structural alterations in σ3 that correlate with the Y354H mutation. These results indicate that a single mutation in σ3 protein alters its susceptibility to proteolysis and provide a structural framework to understand mechanisms of σ3 cleavage during reovirus disassembly.
机译:哺乳动物呼肠孤病毒在内体中经历酸依赖性蛋白水解分解,导致形成传染性亚病毒颗粒(ISVP)。 ISVP是呼肠孤病毒解体中的专性中间产物,介导病毒渗透进入细胞质。呼肠孤病毒分解途径中的初始生化事件是病毒外壳蛋白σ3的蛋白水解。在鼠L929细胞(PI病毒)持续感染过程中选择的变异呼肠孤病毒表现出增强的病毒分解动力学和对内吞酸化和蛋白水解抑制剂的抗性。为了鉴定调节呼肠孤病毒分解过程中酸依赖性和蛋白酶依赖性步骤的σ3序列,野生型3型Dearing菌株的σ3蛋白; PI病毒L / C,PI 2A1和PI 3-1;在昆虫细胞中表达了四个新的突变型σ3蛋白,并用于重覆ISVP。用内切蛋白酶组织蛋白酶L或组织蛋白酶D处理包被的ISVP(rISVPs)证明,在病毒拆卸过程中,氨基酸354(Y354H)处分离的酪氨酸至组氨酸突变增强了σ3蛋白水解。在用酸化抑制剂氯化铵或半胱氨酸蛋白酶抑制剂E64处理的细胞中生长后,在σ3中包含Y354H的rISVP的产量明显高于没有此突变的rISVP的产量。包含野生型或突变型σ3蛋白的病毒颗粒的电子显微照片的图像重建显示,σ3中的结构变化与Y354H突变相关。这些结果表明,σ3蛋白的单个突变改变了其对蛋白水解的敏感性,并为理解呼肠孤病毒拆卸过程中σ3裂解的机制提供了结构框架。

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