药物在Nav1.5心脏钠通道孔中表现出不同的结合模式和通路。

IF 3.3 2区 医学 Q1 PHYSIOLOGY
Journal of General Physiology Pub Date : 2025-03-03 Epub Date: 2025-01-07 DOI:10.1085/jgp.202413658
Elaine Tao, Ben Corry
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引用次数: 0

摘要

钠通道的小分子抑制剂是常用的药物,用于治疗各种心脏和神经系统疾病。它们通过在孔内的结合作用于通道,直接阻断钠传导途径和/或调节通道以使其有利于非导电状态。尽管它们有丰富的临床应用,但我们对它们的蛋白质-药物相互作用和不同化合物结构之间的微妙变化缺乏具体的了解。本研究利用增强的采样模拟研究了九种不同化合物在Nav1.5钠通道孔洞中的结合和可及性。我们发现大多数化合物都有一个共同的孔结合位置——靠近DII-III孔的口,这与该区域大量的芳香残基有关。相反,其他一些化合物更倾向于与脂质竞争的侧孔内结合,而不是在中央腔内结合。总的来说,我们的模拟结果表明,孔内的药物结合是高度混杂的,大多数药物具有多个低亲和力结合位点。通过四个疏水孔中的两个进入孔内部对大多数化合物是有利的。我们的研究结果表明,抑制剂在孔隙中的多特异性和弥漫性结合有助于其抑制作用的不同性质,并可用于未来的药物发现和优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Drugs exhibit diverse binding modes and access routes in the Nav1.5 cardiac sodium channel pore.

Small molecule inhibitors of the sodium channel are common pharmacological agents used to treat a variety of cardiac and nervous system pathologies. They act on the channel via binding within the pore to directly block the sodium conduction pathway and/or modulate the channel to favor a non-conductive state. Despite their abundant clinical use, we lack specific knowledge of their protein-drug interactions and the subtle variations between different compound structures. This study investigates the binding and accessibility of nine different compounds in the pore cavity of the Nav1.5 sodium channel using enhanced sampling simulations. We find that most compounds share a common location of pore binding-near the mouth of the DII-III fenestration-associated with the high number of aromatic residues in this region. In contrast, some other compounds prefer binding within the lateral fenestrations where they compete with lipids, rather than binding in the central cavity. Overall, our simulation results suggest that the drug binding within the pore is highly promiscuous, with most drugs having multiple low-affinity binding sites. Access to the pore interior via two out of four of the hydrophobic fenestrations is favorable for the majority of compounds. Our results indicate that the polyspecific and diffuse binding of inhibitors in the pore contributes to the varied nature of their inhibitory effects and can be exploited for future drug discovery and optimization.

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来源期刊
CiteScore
6.00
自引率
10.50%
发文量
88
审稿时长
6-12 weeks
期刊介绍: General physiology is the study of biological mechanisms through analytical investigations, which decipher the molecular and cellular mechanisms underlying biological function at all levels of organization. The mission of Journal of General Physiology (JGP) is to publish mechanistic and quantitative molecular and cellular physiology of the highest quality, to provide a best-in-class author experience, and to nurture future generations of independent researchers. The major emphasis is on physiological problems at the cellular and molecular level.
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