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Fluorescence-Based High-Throughput Functional Profiling of Ligand-Gated Ion Channels at the Level of Single Cells

机译:荧光基高通量在单细胞水平配体门控离子通道的功能谱

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摘要

Ion channels are involved in many physiological processes and are attractive targets for therapeutic intervention. Their functional properties vary according to their subunit composition, which in turn varies in a developmental and tissue-specific manner and as a consequence of pathophysiological events. Understanding this diversity requires functional analysis of ion channel properties in large numbers of individual cells. Functional characterisation of ligand-gated channels involves quantitating agonist and drug dose-response relationships using electrophysiological or fluorescence-based techniques. Electrophysiology is limited by low throughput and high-throughput fluorescence-based functional evaluation generally does not enable the characterization of the functional properties of each individual cell. Here we describe a fluorescence-based assay that characterizes functional channel properties at single cell resolution in high throughput mode. It is based on progressive receptor activation and iterative fluorescence imaging and delivers >100 dose-responses in a single well of a 384-well plate, using α1-3 homomeric and αβ heteromeric glycine receptor (GlyR) chloride channels as a model system. We applied this assay with transiently transfected HEK293 cells co-expressing halide-sensitive yellow fluorescent protein and different GlyR subunit combinations. Glycine EC50 values of different GlyR isoforms were highly correlated with published electrophysiological data and confirm previously reported pharmacological profiles for the GlyR inhibitors, picrotoxin, strychnine and lindane. We show that inter and intra well variability is low and that clustering of functional phenotypes permits identification of drugs with subunit-specific pharmacological profiles. As this method dramatically improves the efficiency with which ion channel populations can be characterized in the context of cellular heterogeneity, it should facilitate systems-level analysis of ion channel properties in health and disease and the discovery of therapeutics to reverse pathological alterations.
机译:离子通道参与许多生理过程,是治疗干预的有吸引力的靶标。它们的功能性质根据其亚基组成而变化,继而以发育和组织特异性方式以及病理生理事件的结果而变化。了解这种多样性需要对大量单个细胞中离子通道特性进行功能分析。配体门控通道的功能表征涉及使用电生理或基于荧光的技术定量激动剂和药物剂量反应关系。电生理受到低通量的限制,基于高通量荧光的功能评估通常无法表征每个单个细胞的功能特性。在这里,我们描述了一种基于荧光的分析方法,该方法在高通量模式下表征单个细胞分辨率下的功能通道特性。它基于渐进式受体激活和迭代荧光成像,并使用α1-3同聚体和αβ异聚甘氨酸受体(GlyR)氯化物通道作为模型系统,在384孔板的单个孔中提供了100多种剂量反应。我们将这种检测方法与共表达卤化物敏感的黄色荧光蛋白和不同GlyR亚基组合的瞬时转染的HEK293细胞结合使用。不同GlyR亚型的甘氨酸EC50值与已发表的电生理数据高度相关,并证实了先前报道的GlyR抑制剂,微毒素,士的宁和林丹的药理作用。我们表明内部和内部的井之间的变异性低,并且功能表型的聚类允许鉴定具有亚基特异性药理学特征的药物。由于该方法极大地提高了在细胞异质性背景下表征离子通道种群的效率,因此它应有助于对健康和疾病中离子通道特性进行系统级分析,并有助于发现可以逆转病理变化的疗法。

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