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QPatch: The Missing Link Between HTS and Ion Channel Drug Discovery

机译:QPatch:HTS与离子通道药物发现之间的缺失环节

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摘要

The conventional patch clamp has long been considered the best approach for studying ion channel function and pharmacology. However, its low throughput has been a major hurdle to overcome for ion channel drug discovery. The recent emergence of higher throughput, automated patch clamp technology begins to break this bottleneck by providing medicinal chemists with high-quality, information-rich data in a more timely fashion. As such, these technologies have the potential to bridge a critical missing link between high-throughput primary screening and meaningful ion channel drug discovery programs. One of these technologies, the QPatch automated patch clamp system developed by Sophion Bioscience, records whole-cell ion channel currents from 16 or 48 individual cells in a parallel fashion. Here, we review the general applicability of the QPatch to studying a wide variety of ion channel types (voltage-/ligand-gated cationic/anionic channels) in various expression systems. The success rate of gigaseals, formation of the whole-cell configuration and usable cells ranged from 40-80%, depending on a number of factors including the cell line used, ion channel expressed, assay development or optimization time and expression level in these studies. We present detailed analyses of the QPatch features and results in case studies in which secondary screening assays were successfully developed for a voltage-gated calcium channel and a ligand-gated TRP channel. The increase in throughput compared to conventional patch clamp with the same cells was approximately 10-fold. We conclude that the QPatch, combining high data quality and speed with user friendliness and suitability for a wide array of ion channels, resides on the cutting edge of automated patch clamp technology and plays a pivotal role in expediting ion channel drug discovery.
机译:长期以来,传统的膜片钳一直被认为是研究离子通道功能和药理学的最佳方法。然而,其低通量一直是离子通道药物发现所要克服的主要障碍。最近出现了更高通量的自动膜片钳技术,它开始以更及时的方式为药物化学家提供高质量,信息丰富的数据,从而打破了这一瓶颈。因此,这些技术有可能弥合高通量初筛与有意义的离子通道药物发现计划之间的关键缺失环节。这些技术之一是由Sophion Bioscience开发的QPatch自动膜片钳系统,它以并行方式记录来自16或48个单个细胞的全细胞离子通道电流。在这里,我们回顾了QPatch在研究各种表达系统中各种离子通道类型(电压/配体门控的阳离子/阴离子通道)方面的普遍适用性。根据这些研究中使用的细胞系,表达的离子通道,分析开发或最优化时间以及表达水平等多种因素,千兆凝胶的成功率,全细胞构型的形成和可用细胞的范围为40-80%。 。我们在案例研究中对QPatch功能和结果进行了详细分析,在案例研究中,成功​​开发了电压门控钙通道和配体门控TRP通道的二次筛选测定方法。与具有相同细胞的常规膜片钳相比,通量的增加约为10倍。我们得出的结论是,QPatch结合了高数据质量和速度,用户友好性和适用于各种离子通道的适用性,它位于自动膜片钳技术的最前沿,在加速离子通道药物发现中起着关键作用。

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