Akbari Ahangar Amin, Elhanafy Eslam, Blanton Hayden, Li Jing
Department of Biomolecular Sciences, School of Pharmacy, University of Mississippi, Oxford, MS 38677, USA.
iScience. 2024 Aug 23;27(9):110678. doi: 10.1016/j.isci.2024.110678. eCollection 2024 Sep 20.
Thousands of voltage-gated sodium (Na) channel variants contribute to a variety of disorders, including epilepsy, cardiac arrhythmia, and pain disorders. Yet, the effects of more variants remain unclear. The conventional gain-of-function (GoF) or loss-of-function (LoF) classifications are frequently employed to interpret mutations' effects and guide therapy for sodium channelopathies. Our study challenges this binary classification by analyzing 525 mutations associated with 34 diseases across 366 electrophysiology studies, revealing that diseases with similar GoF/LoF effects can stem from unique molecular mechanisms. Utilizing UniProt data, we mapped over 2,400 disease-associated missense mutations across Na channels. This analysis pinpoints key mutation hotspots and maps patterns of gating-property impacts for the mutations, respectively, located around the selectivity filter, activation gate, fast inactivation region, and voltage-sensing domains. This study shows great potential to enhance prediction accuracy for mutational effects based on the structural context, paving the way for targeted drug design in precision medicine.
数千种电压门控钠(Na)通道变体与多种疾病有关,包括癫痫、心律失常和疼痛性疾病。然而,更多变体的影响仍不明确。传统的功能获得(GoF)或功能丧失(LoF)分类常被用于解释突变的影响并指导钠通道病的治疗。我们的研究通过分析366项电生理研究中与34种疾病相关的525个突变,对这种二元分类提出了挑战,揭示出具有相似GoF/LoF效应的疾病可能源于独特的分子机制。利用UniProt数据,我们绘制了钠通道上超过2400个与疾病相关的错义突变图谱。该分析分别确定了关键突变热点,并绘制了位于选择性过滤器、激活门、快速失活区域和电压传感结构域周围的突变对门控特性影响的图谱。这项研究显示出基于结构背景提高突变效应预测准确性的巨大潜力,为精准医学中的靶向药物设计铺平了道路。