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使用混合冷冻电子显微镜和 AlphaFold 方法确定 PTX3 结构,为配体结合和补体激活提供了深入了解。

PTX3 structure determination using a hybrid cryoelectron microscopy and AlphaFold approach offers insights into ligand binding and complement activation.

机构信息

Department of Cell and Chemical Biology, Leiden University Medical Center, 2300 RC Leiden, The Netherlands.

Department of Immunology, Leiden University Medical Center, 2333 ZA Leiden, The Netherlands.

出版信息

Proc Natl Acad Sci U S A. 2022 Aug 16;119(33):e2208144119. doi: 10.1073/pnas.2208144119. Epub 2022 Aug 8.

Abstract

Pattern recognition molecules (PRMs) form an important part of innate immunity, where they facilitate the response to infections and damage by triggering processes such as inflammation. The pentraxin family of soluble PRMs comprises long and short pentraxins, with the former containing unique N-terminal regions unrelated to other proteins or each other. No complete high-resolution structural information exists about long pentraxins, unlike the short pentraxins, where there is an abundance of both X-ray and cryoelectron microscopy (cryo-EM)-derived structures. This study presents a high-resolution structure of the prototypical long pentraxin, PTX3. Cryo-EM yielded a 2.5-Å map of the C-terminal pentraxin domains that revealed a radically different quaternary structure compared to other pentraxins, comprising a glycosylated D4 symmetrical octameric complex stabilized by an extensive disulfide network. The cryo-EM map indicated α-helices that extended N terminal of the pentraxin domains that were not fully resolved. AlphaFold was used to predict the remaining N-terminal structure of the octameric PTX3 complex, revealing two long tetrameric coiled coils with two hinge regions, which was validated using classification of cryo-EM two-dimensional averages. The resulting hybrid cryo-EM/AlphaFold structure allowed mapping of ligand binding sites, such as C1q and fibroblast growth factor-2, as well as rationalization of previous biochemical data. Given the relevance of PTX3 in conditions ranging from COVID-19 prognosis, cancer progression, and female infertility, this structure could be used to inform the understanding and rational design of therapies for these disorders and processes.

摘要

模式识别分子 (PRMs) 是先天免疫的重要组成部分,它们通过触发炎症等过程,促进对感染和损伤的反应。可溶性 PRMs 的 pentraxin 家族包括长型和短型 pentraxins,前者含有与其他蛋白质或彼此无关的独特的 N 端区域。与短型 pentraxins 不同,长型 pentraxins 没有完整的高分辨率结构信息,短型 pentraxins 中有大量的 X 射线和 cryo-EM 衍生结构。本研究展示了典型的长型 pentraxin PTX3 的高分辨率结构。cryo-EM 获得了 C 端 pentraxin 结构域的 2.5 Å 图谱,该图谱显示了与其他 pentraxins 截然不同的四级结构,由一个糖基化的 D4 对称八聚体复合物组成,由广泛的二硫键网络稳定。cryo-EM 图谱表明 pentraxin 结构域的 N 端有延伸的 α-螺旋,但未完全解析。AlphaFold 用于预测八聚体 PTX3 复合物的剩余 N 端结构,揭示了两个带有两个铰链区的长四聚体 coiled coil,这通过 cryo-EM 二维平均值的分类得到了验证。由此产生的 cryo-EM/AlphaFold 混合结构允许映射配体结合位点,如 C1q 和成纤维细胞生长因子-2,并合理化以前的生化数据。鉴于 PTX3 在从 COVID-19 预后、癌症进展和女性不孕等各种疾病中的相关性,该结构可用于为这些疾病和过程的理解和合理设计治疗方法提供信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/716a/9388099/d6f4e038dc9d/pnas.2208144119fig01.jpg

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