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末端区域赋予人 HspB2 和 HspB3 的四聚体组装以可塑性。

Terminal Regions Confer Plasticity to the Tetrameric Assembly of Human HspB2 and HspB3.

机构信息

Department of Biological Sciences, Crystallography, Institute of Structural & Molecular Biology, Birkbeck College, Malet Street, London, WC1E 7HX, UK.

Radboud University Nijmegen, Institute of Molecules & Materials, Department of Biomol Chem, NL-6500 Nijmegen, Netherlands.

出版信息

J Mol Biol. 2018 Sep 14;430(18 Pt B):3297-3310. doi: 10.1016/j.jmb.2018.06.047. Epub 2018 Jun 30.

Abstract

Heterogeneity in small heat shock proteins (sHsps) spans multiple spatiotemporal regimes-from fast fluctuations of part of the protein, to conformational variability of tertiary structure, plasticity of the interfaces, and polydispersity of the inter-converting, and co-assembling oligomers. This heterogeneity and dynamic nature of sHsps has significantly hindered their structural characterization. Atomic coordinates are particularly lacking for vertebrate sHsps, where most available structures are of extensively truncated homomers. sHsps play important roles in maintaining protein levels in the cell and therefore in organismal health and disease. HspB2 and HspB3 are vertebrate sHsps that are found co-assembled in neuromuscular cells, and variants thereof are associated with disease. Here, we present the structure of human HspB2/B3, which crystallized as a hetero-tetramer in a 3:1 ratio. In the HspB2/B3 tetramer, the four α-crystallin domains (ACDs) assemble into a flattened tetrahedron which is pierced by two non-intersecting approximate dyads. Assembly is mediated by flexible "nuts and bolts" involving IXI/V motifs from terminal regions filling ACD pockets. Parts of the N-terminal region bind in an unfolded conformation into the anti-parallel shared ACD dimer grooves. Tracts of the terminal regions are not resolved, most likely due to their disorder in the crystal lattice. This first structure of a full-length human sHsp heteromer reveals the heterogeneous interactions of the terminal regions and suggests a plasticity that is important for the cytoprotective functions of sHsps.

摘要

小分子热休克蛋白 (sHsps) 的异质性跨越多个时空尺度——从蛋白质部分的快速波动,到三级结构的构象可变性、界面的可塑性以及相互转化和共组装低聚物的多分散性。sHsps 的这种异质性和动态性质极大地阻碍了它们的结构表征。原子坐标尤其缺乏脊椎动物 sHsps,大多数可用的结构都是广泛截断的同源物。sHsps 在维持细胞内蛋白质水平方面发挥着重要作用,因此在机体健康和疾病中发挥着重要作用。HspB2 和 HspB3 是脊椎动物 sHsps,它们在神经肌肉细胞中共组装,其变体与疾病有关。在这里,我们展示了人 HspB2/B3 的结构,它以 3:1 的比例结晶为异四聚体。在 HspB2/B3 四聚体中,四个 α-晶体蛋白结构域 (ACDs) 组装成一个扁平的四面体,其中有两个不相交的近似二分线穿过。组装由涉及来自末端区域的 IXI/V 基序填充 ACD 口袋的灵活“螺母和螺栓”介导。N 端区域的部分以未折叠构象结合到反平行共享 ACD 二聚体槽中。末端区域的部分未解析,可能是由于它们在晶格中的无序。这种全长人 sHsp 异质体的第一个结构揭示了末端区域的异质相互作用,并表明了这种可塑性对于 sHsp 的细胞保护功能很重要。

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