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人类XPR1在磷酸盐输出中的结构与功能

Structure and function of human XPR1 in phosphate export.

作者信息

Chen Long, He Jin, Wang Mingxing, She Ji

机构信息

MOE Key Laboratory for Cellular Dynamics, Hefei National Research Center for Interdisciplinary Sciences at the Microscale, Center for Advanced Interdisciplinary Science and Biomedicine of IHM, Division of Life Sciences and Medicine, University of Science and Technology of China, Hefei, China.

Biomedical Sciences and Health Laboratory of Anhui Province, University of Science and Technology of China, Hefei, China.

出版信息

Nat Commun. 2025 Mar 26;16(1):2983. doi: 10.1038/s41467-025-58195-6.

Abstract

Xenotropic and polytropic retrovirus receptor 1 (XPR1) functions as a phosphate exporter and is pivotal in maintaining human phosphate homeostasis. It has been identified as a causative gene for primary familial brain calcification. Here we present the cryogenic electron microscopy (cryo-EM) structure of human XPR1 (HsXPR1). HsXPR1 exhibits a dimeric structure in which only TM1 directly constitutes the dimer interface of the transmembrane domain. Each HsXPR1 subunit can be divided spatially into a core domain and a scaffold domain. The core domain of HsXPR1 forms a pore-like structure, along which two phosphate-binding sites enriched with positively charged residues are identified. Mutations of key residues at either site substantially diminish the transport activity of HsXPR1. Phosphate binding at the central site may trigger a conformational change at TM9, leading to the opening of the extracellular gate. In addition, our structural analysis reveals a new conformational state of HsXPR1 in which the cytoplasmic SPX domains form a V-shaped structure. Altogether, our results elucidate the overall architecture of HsXPR1 and shed light on XPR1-mediated phosphate export.

摘要

嗜异性和多嗜性逆转录病毒受体1(XPR1)作为一种磷酸盐转运体,在维持人体磷酸盐稳态中起关键作用。它已被确定为原发性家族性脑钙化的致病基因。在此,我们展示了人类XPR1(HsXPR1)的低温电子显微镜(cryo-EM)结构。HsXPR1呈现出二聚体结构,其中只有跨膜螺旋1(TM1)直接构成跨膜结构域的二聚体界面。每个HsXPR1亚基在空间上可分为一个核心结构域和一个支架结构域。HsXPR1的核心结构域形成一个孔状结构,沿着该结构确定了两个富含带正电荷残基的磷酸盐结合位点。任一结合位点处关键残基的突变都会显著降低HsXPR1的转运活性。中央位点的磷酸盐结合可能会引发跨膜螺旋9(TM9)的构象变化,导致细胞外门打开。此外,我们的结构分析揭示了HsXPR1的一种新构象状态,其中细胞质中的SPX结构域形成一个V形结构。总之,我们的结果阐明了HsXPR1的整体结构,并为XPR1介导的磷酸盐转运提供了线索。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/77c0/11947285/065a1676b77c/41467_2025_58195_Fig1_HTML.jpg

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