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Crystal Structure of an Activated Variant of Small Heat Shock Protein Hsp16.5

机译:小型热休克蛋白的活性变体的晶体结构Hsp16.5

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摘要

How does the sequence of a single Small Heat Shock Protein (sHSP) assemble into oligomers of different sizes? To gain insight into the underlying structural mechanism, we determined the crystal structure of an engineered variant of Methanocaldococcus jannaschii Hsp16.5 wherein a 14 amino acid peptide from human heat shock protein 27 (Hsp27) was inserted at the junction of the N-terminal region and the α-crystallin domain. In response to this insertion, the oligomer shell expands from 24 to 48 subunits while maintaining octahedral symmetry. Oligomer rearrangement does not alter the fold of the conserved α-crystallin domain nor does it disturb the interface holding the dimeric building block together. Rather, the flexible C-terminal tail of Hsp16.5 changes its orientation relative to the α-crystallin domain which enables alternative packing of dimers. This change in orientation preserves a peptide-in-groove interaction of the C-terminal tail with an adjacent β-sandwich thereby holding the assembly together. The interior of the expanded oligomer, where substrates presumably bind, retains its predominantly non-polar character relative to the outside surface. New large windows in the outer shell provide increased access to these substrate-binding regions, thus accounting for the higher affinity of this variant to substrates. Oligomer polydispersity regulates sHSPs chaperone activity in vitro and has been implicated in their physiological roles. The structural mechanism of Hsp16.5 oligomer flexibility revealed here, which is likely to be highly conserved across the sHSP superfamily, explains the relationship between oligomer expansion observed in disease-linked mutants and changes in chaperone activity.
机译:单个小型热休克蛋白(SHSP)的序列如何组装成不同尺寸的低聚物?为了深入了解潜在的结构机制,我们确定了甲烷甘油蛋白的工程变体的晶体结构,其中将来自人热休克蛋白27(Hsp27)的14个氨基酸肽插入N末端区域的结和α-晶体域。响应于这种插入,低聚物壳在24至48个亚基上膨胀,同时保持八面体对称性。低聚物重排不会改变保守的α-晶体域的折叠,也不会打扰将二聚体构建块保持在一起的界面。相反,HSP16.5的柔性C末端尾部相对于α-晶体结构域改变其取向,这使得可以替代的二聚体填充。取向的这种变化可以保留C末端尾部与相邻β-夹心的肽 - 槽的相互作用,从而将组件保持在一起。膨胀低聚物的内部,其中基板可能是结合的,其主要是相对于外表面的主要非极性特征。外壳中的新型大窗口提供对这些基板结合区域的增加的访问,从而占该变体对基板的较高亲和力。低聚物多分散性在体外调节SHSP伴侣活性,并涉及其生理作用。 HSP16.5低聚物柔韧性的结构机制在这里揭示,其在SHSP超家族中可能高度保守,解释了在疾病联系突变体中观察到的低聚物膨胀与伴侣活性的变化之间的关系。

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