门控
生物物理学
对接(动物)
化学
离子通道
分子动力学
钠通道
血浆蛋白结合
计算生物学
HEK 293细胞
蛋白质结构
结合位点
蛋白质-蛋白质相互作用
神经科学
细胞生物学
翻译后修饰
电生理学
结构母题
领域(数学分析)
计算机科学
生物
离子
动力学(音乐)
主题(音乐)
作者
Rupam Biswas,Ana Laura López-Serrano,Apoorva Purohit,Angelina Ramirez-Navarro,Hsiang-Ling Huang,Gao‐Wei Zheng,Sarah M. Heissler,Isabelle Deschênes,Krishna Chinthalapudi
标识
DOI:10.1038/s41467-026-69672-x
摘要
Voltage-gated sodium channels are vital for regulating excitability in muscle and nerve cells, and their dysregulation is linked to a range of diseases. However, therapeutic targeting of Nav channels remains challenging due to a limited understanding of their gating mechanisms. Here, we present a cryo-EM structure of human Nav1.5 in an intermediate open state, stabilized by interactions between the N-terminal domain and the S6I segment. This structure reveals a possible Na+ binding site adjacent to the conserved inactivation (IFM) motif. Molecular dynamics simulations demonstrate that monovalent cations stably occupy this site, while electrophysiological recordings demonstrate that ion binding modulates IFM motif docking and fast inactivation kinetics. Our findings reveal that IFM accessibility is dynamically regulated in this intermediate state, refining the canonical door-wedge model of fast inactivation. Collectively, our study provides a revised structural framework for Nav1.5 gating mechanisms, suggesting an alternative pathway for ion accessibility that may inform better mechanistic and therapeutic strategies for treating Nav1.5-related cardiac arrhythmias.
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