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April 24, 2026PLoS Biology2 citationsOpen Access

Structure of the human P2X3 receptor reveals the basis for subtype-selective inhibition by sivopixant

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ZZZhixuan ZhaoDWDong-Ping WangXZXin Zhang

Key Points

  • To understand the structural basis for the subtype-selective inhibition of the P2X3 receptor by sivopixant.
  • Cryo-EM was used to determine the structure of the human P2X3 receptor in complex with ATP and sivopixant.
  • Key residues for inhibition were identified using structure-based mutational analysis and electrophysiology.
  • Molecular dynamics simulations explored the effects of sivopixant on P2X3 receptor activation.
  • Sivopixant binds to an allosteric site, inhibiting channel opening by expanding the receptor's upper-body domain.
  • Structural comparisons revealed mechanisms for subtype selectivity among P2X subtypes.
  • Essential residues for sivopixant inhibition were pinpointed, enhancing understanding of targeted drug design.

Abstract

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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Cite This Study

Zhao et al. (2026) studied this question.

synapsesocial.com/papers/69eb09c9553a5433e34b42a7https://doi.org/10.1371/journal.pbio.3003777
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Also Consider

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  1. 1Cryo-EM structures of human P2X2/3 heteromer channel reveal the structural basis of ligand selectivity2026
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  3. 3Discovery of Triazolopyrimidine Derivatives as Selective P2X3 Receptor Antagonists Binding to an Unprecedented Allosteric Site as Evidenced by Cryo-Electron Microscopy2024 · 6 citations
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