Tuma R, Prevelige P E, Thomas G J
Division of Cell Biology and Biophysics, School of Biological Sciences, University of Missouri, Kansas City, MO 64110-2499, USA.
Proc Natl Acad Sci U S A. 1998 Aug 18;95(17):9885-90. doi: 10.1073/pnas.95.17.9885.
Folding mechanisms of proteins incorporated within supramolecular assemblies, including viruses, are little understood and may differ fundamentally from folding mechanisms of small globular proteins. We describe a novel Raman dynamic probe of hydrogen-isotope exchange to investigate directly these protein folding/assembly pathways. The method is applied to subunit folding in assembly intermediates of the double-stranded DNA bacteriophage P22. The icosahedral procapsid-to-capsid maturation (shell expansion) of P22 is shown to be accompanied by a large increase in exchange protection of peptide beta-strands. The molecular mechanism of shell expansion involves unfolding of metastable tertiary structure to form more stable quaternary contacts and is governed by a surprisingly high activation energy. The results demonstrate that coat subunit folding and capsid expansion are strongly coupled processes. Subunit structure in the procapsid represents a late intermediate along the folding/assembly pathway to the mature capsid. Coupling of folding and assembly is proposed as a general pathway for the construction of supramolecular complexes.
包括病毒在内的超分子组装体中所含蛋白质的折叠机制鲜为人知,可能与小分子球状蛋白质的折叠机制有根本区别。我们描述了一种用于氢同位素交换的新型拉曼动态探针,以直接研究这些蛋白质折叠/组装途径。该方法应用于双链DNA噬菌体P22组装中间体中的亚基折叠。结果表明,P22二十面体原衣壳到衣壳的成熟(外壳扩张)伴随着肽β链交换保护的大幅增加。外壳扩张的分子机制涉及亚稳态三级结构的展开以形成更稳定的四级接触,并受惊人的高活化能控制。结果表明,衣壳亚基折叠和衣壳扩张是强耦合过程。原衣壳中的亚基结构代表了沿着折叠/组装途径到成熟衣壳的晚期中间体。折叠与组装的耦合被认为是构建超分子复合物的一般途径。