Department of Pediatrics, University of Pittsburgh School of Medicine, Pittsburgh, PA 15224.
Department of Pathology, Microbiology, and Immunology, Vanderbilt University Medical Center, Nashville, TN 37232.
Proc Natl Acad Sci U S A. 2021 Mar 16;118(11). doi: 10.1073/pnas.2018127118.
Intracellular protein homeostasis is maintained by a network of chaperones that function to fold proteins into their native conformation. The eukaryotic TRiC chaperonin (TCP1-ring complex, also called CCT for cytosolic chaperonin containing TCP1) facilitates folding of a subset of proteins with folding constraints such as complex topologies. To better understand the mechanism of TRiC folding, we investigated the biogenesis of an obligate TRiC substrate, the reovirus σ3 capsid protein. We discovered that the σ3 protein interacts with a network of chaperones, including TRiC and prefoldin. Using a combination of cryoelectron microscopy, cross-linking mass spectrometry, and biochemical approaches, we establish functions for TRiC and prefoldin in folding σ3 and promoting its assembly into higher-order oligomers. These studies illuminate the molecular dynamics of σ3 folding and establish a biological function for TRiC in virus assembly. In addition, our findings provide structural and functional insight into the mechanism by which TRiC and prefoldin participate in the assembly of protein complexes.
细胞内蛋白质的动态平衡是由伴侣蛋白网络维持的,伴侣蛋白的功能是将蛋白质折叠成其天然构象。真核 TRiC 伴侣蛋白(TCP1-环复合物,也称为含有 TCP1 的胞质伴侣蛋白)有助于折叠具有复杂拓扑结构等折叠限制的蛋白质亚基。为了更好地理解 TRiC 折叠的机制,我们研究了一种必需的 TRiC 底物——呼肠孤病毒 σ3 衣壳蛋白的生物发生。我们发现 σ3 蛋白与包括 TRiC 和前折叠蛋白在内的伴侣蛋白网络相互作用。我们使用冷冻电子显微镜、交联质谱和生化方法的组合,确定了 TRiC 和前折叠蛋白在折叠 σ3 并促进其组装成更高阶寡聚体中的功能。这些研究阐明了 σ3 折叠的分子动力学,并确定了 TRiC 在病毒组装中的生物学功能。此外,我们的发现为 TRiC 和前折叠蛋白参与蛋白质复合物组装的机制提供了结构和功能见解。