Nanion Technologies GmbH , München, Germany.
Theoretical Medicine and Biosciences, Saarland University, Homburg, Germany.
J Gen Physiol. 2023 Dec 4;155(12). doi: 10.1085/jgp.202213132. Epub 2023 Oct 6.
PIEZO1 channels are mechanically activated cation channels that play a pivotal role in sensing mechanical forces in various cell types. Their dysfunction has been associated with numerous pathophysiological states, including generalized lymphatic dysplasia, varicose vein disease, and hereditary xerocytosis. Given their physiological relevance, investigating PIEZO1 is crucial for the pharmaceutical industry, which requires scalable techniques to allow for drug discovery. In this regard, several studies have used high-throughput automated patch clamp (APC) combined with Yoda1, a specific gating modifier of PIEZO1 channels, to explore the function and properties of PIEZO1 in heterologous expression systems, as well as in primary cells. However, a combination of solely mechanical stimulation (M-Stim) and high-throughput APC has not yet been available for the study of PIEZO1 channels. Here, we show that optimization of pipetting parameters of the SyncroPatch 384 coupled with multihole NPC-384 chips enables M-Stim of PIEZO1 channels in high-throughput electrophysiology. We used this approach to explore differences between the response of mouse and human PIEZO1 channels to mechanical and/or chemical stimuli. Our results suggest that applying solutions on top of the cells at elevated pipetting flows is crucial for activating PIEZO1 channels by M-Stim on the SyncroPatch 384. The possibility of comparing and combining mechanical and chemical stimulation in a high-throughput patch clamp assay facilitates investigations on PIEZO1 channels and thereby provides an important experimental tool for drug development.
PIEZO1 通道是机械激活的阳离子通道,在各种细胞类型中对感受机械力起着关键作用。它们的功能障碍与许多病理生理状态有关,包括全身性淋巴管发育不良、静脉曲张疾病和遗传性红细胞增多症。鉴于其生理相关性,研究 PIEZO1 对制药行业至关重要,制药行业需要可扩展的技术来进行药物发现。在这方面,几项研究使用高通量自动化膜片钳(APC)结合 Yoda1(PIEZO1 通道的特定门控修饰剂),在异源表达系统以及原代细胞中探索 PIEZO1 的功能和特性。然而,机械刺激(M-Stim)和高通量 APC 的组合尚未可用于 PIEZO1 通道的研究。在这里,我们表明,SyncroPatch 384 的移液参数的优化与多孔 NPC-384 芯片相结合,能够在高通量电生理学中对 PIEZO1 通道进行 M-Stim。我们使用这种方法来研究机械和/或化学刺激对小鼠和人 PIEZO1 通道反应的差异。我们的结果表明,在升高的移液流速下将溶液施加到细胞顶部对于在 SyncroPatch 384 上通过 M-Stim 激活 PIEZO1 通道至关重要。在高通量膜片钳检测中比较和组合机械和化学刺激的可能性促进了对 PIEZO1 通道的研究,并为药物开发提供了重要的实验工具。