Open-state structure and pore gating mechanism of the cardiac sodium channel.

Jiang, Daohua; Banh, Richard; Gamal El-Din, Tamer M; Tonggu, Lige; Lenaeus, Michael J; Pomès, Régis; Zheng, Ning; Catterall, William A · Cell · 2021

basic_science · Level V

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Abstract

The heartbeat is initiated by voltage-gated sodium channel Na<sub>V</sub>1.5, which opens rapidly and triggers the cardiac action potential; however, the structural basis for pore opening remains unknown. Here, we blocked fast inactivation with a mutation and captured the elusive open-state structure. The fast inactivation gate moves away from its receptor, allowing asymmetric opening of pore-lining S6 segments, which bend and rotate at their intracellular ends to dilate the activation gate to ∼10 Å diameter. Molecular dynamics analyses predict physiological rates of Na<sup>+</sup> conductance. The open-state pore blocker propafenone binds in a high-affinity pose, and drug-access pathways are revealed through the open activation gate and fenestrations. Comparison with mutagenesis results provides a structural map of arrhythmia mutations that target the activation and fast inactivation gates. These results give atomic-level insights into molecular events that underlie generation of the action potential, open-state drug block, and fast inactivation of cardiac sodium channels, which initiate the heartbeat.

Medical subject headings