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自动化细胞内药理学电生理学用于配体门控离子型受体和药理学筛选。

Automated Intracellular Pharmacological Electrophysiology for Ligand-Gated Ionotropic Receptor and Pharmacology Screening.

机构信息

George W Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, Georgia (R.E.P., M.C.Y., C.R.F.); Department of Pharmacology and Chemical Biology, Emory University School of Medicine, Atlanta, Georgia (R.E.P., A.J., S.F.T.); Department of Molecular Genetics & Microbiology, Center for Neurogenetics, Genetics Institute, University of Florida, Gainesville, Florida (O.L.M., E.T.W.); and Department of Anesthesiology, Emory University, Atlanta, Georgia (A.J.).

George W Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, Georgia (R.E.P., M.C.Y., C.R.F.); Department of Pharmacology and Chemical Biology, Emory University School of Medicine, Atlanta, Georgia (R.E.P., A.J., S.F.T.); Department of Molecular Genetics & Microbiology, Center for Neurogenetics, Genetics Institute, University of Florida, Gainesville, Florida (O.L.M., E.T.W.); and Department of Anesthesiology, Emory University, Atlanta, Georgia (A.J.)

出版信息

Mol Pharmacol. 2021 Jul;100(1):73-82. doi: 10.1124/molpharm.120.000195. Epub 2021 May 6.

Abstract

Communication between neuronal cells, which is central to brain function, is performed by several classes of ligand-gated ionotropic receptors. The gold-standard technique for measuring rapid receptor response to agonist is manual patch-clamp electrophysiology, capable of the highest temporal resolution of any current electrophysiology technique. We report an automated high-precision patch-clamp system that substantially improves the throughput of these time-consuming pharmacological experiments. The patcherBot enables recording from cells expressing receptors of interest and manipulation of them to enable millisecond solution exchange to activate ligand-gated ionotropic receptors. The solution-handling control allows for autonomous pharmacological concentration-response experimentation on adherent cells, lifted cells, or excised outside-out patches. The system can perform typical ligand-gated ionotropic receptor experimentation protocols autonomously, possessing a high success rate in completing experiments and up to a 10-fold reduction in research effort over the duration of the experiment. Using it, we could rapidly replicate previous data sets, reducing the time it took to produce an eight-point concentration-response curve of the effect of propofol on GABA type A receptor deactivation from likely weeks of recording to ∼13 hours of recording. On average, the rate of data collection of the patcherBot was a data point every 2.1 minutes that the operator spent interacting with the patcherBot The patcherBot provides the ability to conduct complex and comprehensive experimentation that yields data sets not normally within reach of conventional systems that rely on constant human control. This technical advance can contribute to accelerating the examination of the complex function of ion channels and the pharmacological agents that act on them. SIGNIFICANCE STATEMENT: This work presents an automated intracellular pharmacological electrophysiology robot, patcherBot, that substantially improves throughput and reduces human time requirement in pharmacological patch-clamp experiments. The robotic system includes millisecond fluid exchange handling and can perform highly efficient ligand-gated ionotropic receptor experiments. The patcherBot is built using a conventional patch-clamp rig, and the technical advances shown in this work greatly accelerate the ability to conduct high-fidelity pharmacological electrophysiology.

摘要

神经元细胞之间的通讯对于大脑功能至关重要,这种通讯是通过几类配体门控离子型受体来实现的。测量受体对激动剂快速反应的金标准技术是手动膜片钳电生理学,它能够实现任何当前电生理学技术中最高的时间分辨率。我们报告了一种自动化的高精度膜片钳系统,该系统大大提高了这些耗时的药理学实验的通量。patcherBot 能够对表达感兴趣受体的细胞进行记录,并对其进行操作,从而实现毫秒级的溶液交换,以激活配体门控离子型受体。该溶液处理控制系统允许对贴壁细胞、提起的细胞或分离的外面向外片进行自主的药理学浓度反应实验。该系统可以自主执行典型的配体门控离子型受体实验方案,在实验过程中成功率很高,研究工作量减少了 10 倍。使用该系统,我们可以快速复制以前的数据组,将产生丙泊酚对 GABA 型 A 受体失活的八点浓度反应曲线所需的时间从可能的数周记录减少到约 13 小时的记录。平均而言,patcherBot 的数据收集速度是操作员与 patcherBot 交互时每分钟收集一个数据点。patcherBot 提供了进行复杂而全面的实验的能力,这些实验产生的数据通常超出了依赖于恒定人工控制的传统系统的范围。这一技术进步可以有助于加速对离子通道的复杂功能以及作用于它们的药理学试剂的研究。 意义:本工作提出了一种自动化的细胞内药理学电生理学机器人 patcherBot,它大大提高了药理学膜片钳实验的通量并减少了人力需求。该机器人系统包括毫秒级的流体交换处理,能够进行高效的配体门控离子型受体实验。patcherBot 是使用常规膜片钳装置构建的,本工作中展示的技术进步极大地加速了进行高保真药理学电生理学的能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0440/8274318/f0281dc6e485/molpharm.120.000195absf1.jpg

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