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嗜热甲烷球菌 16.5kDa 小热休克蛋白的冷冻电镜结构。

Cryo-EM structure of a 16.5-kDa small heat-shock protein from Methanocaldococcus jannaschii.

机构信息

Department of Precision Medicine, Graduate School of Basic Medical Science (GSBMS), Institute for Antimicrobial Resistance Research and Therapeutics, Sungkyunkwan University School of Medicine, Suwon 16419, Republic of Korea.

Research Solution Center, Institute for Basic Science (IBS), Daejeon 34126, Republic of Korea.

出版信息

Int J Biol Macromol. 2024 Feb;258(Pt 1):128763. doi: 10.1016/j.ijbiomac.2023.128763. Epub 2023 Dec 15.

Abstract

The small heat-shock protein (sHSP) from the archaea Methanocaldococcus jannaschii, MjsHSP16.5, functions as a broad substrate ATP-independent holding chaperone protecting misfolded proteins from aggregation under stress conditions. This protein is the first sHSP characterized by X-ray crystallography, thereby contributing significantly to our understanding of sHSPs. However, despite numerous studies assessing its functions and structures, the precise arrangement of the N-terminal domains (NTDs) within this sHSP cage remains elusive. Here we present the cryo-electron microscopy (cryo-EM) structure of MjsHSP16.5 at 2.49-Å resolution. The subunits of MjsHSP16.5 in the cryo-EM structure exhibit lesser compaction compared to their counterparts in the crystal structure. This structural feature holds particular significance in relation to the biophysical properties of MjsHSP16.5, suggesting a close resemblance to this sHSP native state. Additionally, our cryo-EM structure unveils the density of residues 24-33 within the NTD of MjsHSP16.5, a feature that typically remains invisible in the majority of its crystal structures. Notably, these residues show a propensity to adopt a β-strand conformation and engage in antiparallel interactions with strand β1, both intra- and inter-subunit modes. These structural insights are corroborated by structural predictions, disulfide bond cross-linking studies of Cys-substitution mutants, and protein disaggregation assays. A comprehensive understanding of the structural features of MjsHSP16.5 expectedly holds the potential to inspire a wide range of interdisciplinary applications, owing to the renowned versatility of this sHSP as a nanoscale protein platform.

摘要

古菌甲烷球菌(Methanocaldococcus jannaschii)的小分子热休克蛋白(sHSP),MjsHSP16.5,作为一种广泛的无 ATP 依赖的持留伴侣,在应激条件下保护错误折叠的蛋白质不聚集。该蛋白是第一个通过 X 射线晶体学表征的 sHSP,因此对我们理解 sHSP 做出了重大贡献。然而,尽管有许多研究评估了它的功能和结构,但这个 sHSP 笼状结构中 N 端结构域(NTD)的精确排列仍然难以捉摸。在这里,我们展示了 2.49-Å 分辨率的 MjsHSP16.5 的低温电子显微镜(cryo-EM)结构。与晶体结构相比,cryo-EM 结构中的 MjsHSP16.5 亚基的紧凑程度较低。这种结构特征与 MjsHSP16.5 的生物物理特性密切相关,表明与该 sHSP 的天然状态非常相似。此外,我们的 cryo-EM 结构揭示了 MjsHSP16.5 的 NTD 中残基 24-33 的密度,这一特征在其大多数晶体结构中通常是不可见的。值得注意的是,这些残基倾向于采取 β-折叠构象,并与β1 链进行反平行相互作用,无论是在亚基内还是亚基间模式。这些结构见解得到了结构预测、Cys 取代突变体的二硫键交联研究和蛋白质解聚实验的证实。对 MjsHSP16.5 结构特征的全面理解预计将有可能激发广泛的跨学科应用,这要归功于该 sHSP 作为纳米级蛋白质平台的众所周知的多功能性。

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