变构调节
生物
受体
细胞外
细胞生物学
电生理学
HEK 293细胞
神经科学
突变体
结构生物学
血浆蛋白结合
变构调节剂
蛋白质结构
离子通道
生物物理学
蛋白质亚单位
药物发现
结构-活动关系
结合位点
信号转导
生物化学
功能选择性
钾通道
钥匙(锁)
半胱氨酸环受体
计算生物学
作者
Zhixuan Zhao,Dong-Ping Wang,Xin Zhang,Yuan Gao,Hexin Xu,Xinyu Teng,Cheng Shen,Jirui Chen,Jinru Zhang,Chang-Run Guo,Motoyuki Hattori
出处
期刊:PLOS Biology
[Public Library of Science]
日期:2026-04-22
卷期号:24 (4): e3003777-e3003777
标识
DOI:10.1371/journal.pbio.3003777
摘要
P2X receptors are ATP-gated cation channels, and the P2X3 subtype plays crucial roles in peripheral sensory neurons, including in chronic pain and chronic cough. Accordingly, P2X3 receptors have attracted substantial interest as a therapeutic target. Gefapixant, a negative allosteric modulator (NAM) of P2X3 receptors, has been approved in some countries for the treatment of chronic cough; however, its limited selectivity for P2X3 homomers over P2X2/P2X3 heteromers is associated with taste disturbance as a prominent adverse effect. These limitations have motivated the development of next-generation NAMs with improved subtype selectivity, but their subtype-specific allosteric inhibition mechanisms are unclear. Here, we report the cryo-EM structure of the human P2X3 receptor in complex with ATP and the P2X3-selective next-generation NAM sivopixant, an investigational drug. Sivopixant binds to an allosteric site at the portal of the central pocket in the extracellular domain, and structure-based mutational analysis by electrophysiology identifies key residues required for sivopixant-dependent inhibition of human P2X3 receptors. Structural comparisons across P2X subtypes, together with patch-clamp analyses of gain-of-function mutants that confer sensitivity to two investigational drugs, sivopixant and camlipixant, provided a broadly applicable structural framework for subtype selectivity. Furthermore, structural comparisons with apo and ATP-bound open states of P2X3 receptors, together with molecular dynamics simulations, revealed that sivopixant expands the upper-body domain to suppress the lower-body movements required for channel activation, thereby preventing channel opening even in the presence of ATP.
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