Key Laboratory of Medical Electrophysiology, Ministry of Education & Medical Electrophysiological Key Laboratory of Sichuan Province, Institute of Cardiovascular Research, Southwest Medical University, Luzhou 646000, China.
College of Pharmaceutical Sciences, Gannan Medical University, Ganzhou 341000, China.
Cells. 2023 Jul 17;12(14):1870. doi: 10.3390/cells12141870.
Ion channels are the second largest class of drug targets after G protein-coupled receptors. In addition to well-recognized ones like voltage-gated Na/K/Ca channels in the heart and neurons, novel ion channels are continuously discovered in both excitable and non-excitable cells and demonstrated to play important roles in many physiological processes and diseases such as developmental disorders, neurodegenerative diseases, and cancer. However, in the field of ion channel discovery, there are an unignorable number of published studies that are unsolid and misleading. Despite being the gold standard of a functional assay for ion channels, electrophysiological recordings are often accompanied by electrical noise, leak conductance, and background currents of the membrane system. These unwanted signals, if not treated properly, lead to the mischaracterization of proteins with seemingly unusual ion-conducting properties. In the recent ten years, the technical revolution of cryo-electron microscopy (cryo-EM) has greatly advanced our understanding of the structures and gating mechanisms of various ion channels and also raised concerns about the pore-forming ability of some previously identified channel proteins. In this review, we summarize cryo-EM findings on ion channels with molecular identities recognized or disputed in recent ten years and discuss current knowledge of proposed channel proteins awaiting cryo-EM analyses. We also present a classification of ion channels according to their architectures and evolutionary relationships and discuss the possibility and strategy of identifying more ion channels by analyzing structures of transmembrane proteins of unknown function. We propose that cross-validation by electrophysiological and structural analyses should be essentially required for determining molecular identities of novel ion channels.
离子通道是继 G 蛋白偶联受体之后的第二大类药物靶点。除了在心脏和神经元中众所周知的电压门控 Na+/K+/Ca2+通道外,在兴奋和非兴奋细胞中不断发现新的离子通道,并证明它们在许多生理过程和疾病中发挥重要作用,如发育障碍、神经退行性疾病和癌症。然而,在离子通道发现领域,有相当数量的发表研究是不严谨和具有误导性的。尽管电生理学记录是离子通道的功能检测金标准,但它常常伴随着细胞膜系统的电噪声、漏导和背景电流。如果这些不需要的信号得不到适当处理,就会导致具有看似异常离子传导特性的蛋白质被错误地描述。在最近的十年中,低温电子显微镜(cryo-EM)技术的革命极大地促进了我们对各种离子通道的结构和门控机制的理解,同时也引起了对一些先前鉴定的通道蛋白的孔形成能力的关注。在这篇综述中,我们总结了最近十年中具有分子身份的离子通道的 cryo-EM 研究结果,讨论了有待 cryo-EM 分析的具有争议性的通道蛋白的当前知识。我们还根据它们的结构和进化关系对离子通道进行分类,并讨论了通过分析未知功能的跨膜蛋白的结构来识别更多离子通道的可能性和策略。我们建议,通过电生理和结构分析的交叉验证,对于确定新的离子通道的分子身份是必不可少的。