Kondratskyi Artem, Bazzone Andre, Rapedius Markus, Zerlotti Rocco, Masson Bastien, Sadanandan Nidish Ponath, Parker Joanne L, Santinho Alexandre, Moutia Marine, Thiam Abdou Rachid, Kemp Arlene, Seibertz Fitzwilliam, Murciano Nicoletta, Friis Søren, Becker Nadine, Obergrussberger Alison, Barthmes Maria, George Cecilia, George Michael, Dalrymple David, Gasnier Bruno, Newstead Simon, Grimm Christian, Fertig Niels
Nanion Technologies GmbH, Munich, Germany.
Oria Bioscience, Paris, France.
Bioelectricity. 2025 Mar 18;7(1):29-57. doi: 10.1089/bioe.2025.0010. eCollection 2025 Mar.
In recent years, there has been a growing interest in lysosomal ion channels and transporters due to their critical role in maintaining lysosomal function and their involvement in a variety of diseases, particularly lysosomal storage diseases, cancer, and neurodegenerative disorders. Recent advancements in research techniques, including manual and automated patch clamp (APC) electrophysiology, solid-supported membrane-based electrophysiology (SSME), and fluorescence-based ion imaging, have further enhanced our ability to investigate lysosomal ion channels and transporters in both physiological and pathological conditions, spurring drug discovery efforts. Several pharmaceutical companies are now developing therapies aimed at modulating these channels and transporters to improve lysosomal function in disease. Small molecules targeting channels like transient receptor potential mucolipin (TRPML) 1 and TMEM175, as well as drugs modulating lysosomal pH, are currently in preclinical and clinical development. This review provides an overview of the role of lysosomal ion channels and transporters in health and disease, highlights the cutting-edge techniques used to study them, and discusses the therapeutic potential of targeting these channels and transporters in the treatment of various diseases. Furthermore, in addition to summarizing recent discoveries, we contribute novel functional data on cystinosin, TRPML1, and two-pore channel 2 (TPC2), utilizing both SSME and APC approaches.
近年来,由于溶酶体离子通道和转运体在维持溶酶体功能中起关键作用且参与多种疾病,尤其是溶酶体贮积症、癌症和神经退行性疾病,人们对它们的兴趣与日俱增。研究技术的最新进展,包括手动和自动膜片钳(APC)电生理学、基于固体支持膜的电生理学(SSME)以及基于荧光的离子成像,进一步增强了我们在生理和病理条件下研究溶酶体离子通道和转运体的能力,推动了药物研发工作。几家制药公司目前正在开发旨在调节这些通道和转运体以改善疾病中溶酶体功能的疗法。靶向瞬时受体电位黏脂素(TRPML)1和TMEM175等通道的小分子,以及调节溶酶体pH值的药物,目前正处于临床前和临床开发阶段。本综述概述了溶酶体离子通道和转运体在健康和疾病中的作用,强调了用于研究它们的前沿技术,并讨论了靶向这些通道和转运体治疗各种疾病的潜力。此外,除了总结近期发现外,我们还利用SSME和APC方法提供了关于胱氨酸转运体、TRPML1和双孔通道2(TPC2)的新功能数据。