神経科学研究を加速する高速自動電気生理学(Advancing neuroscience research with high-speed automated electrophysiology)

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2025-06-13 イェール大学

イェール大学の研究チームは、高速かつ自動化された電気生理計測技術を開発し、数百のニューロンから短時間で電気的特性を取得可能にした。従来の手動パッチクランプ法に比べ、分析時間を大幅に短縮し、再現性と客観性が向上。得られたデータはソフトウェアで解析され、疾患モデル間の比較や薬剤効果の検出が可能に。この技術はバイオマーカー探索や創薬にも貢献すると期待され、「Nature Protocols」に発表された。

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急性分離神経細胞の高スループット多重電圧クランプ/電流クランプ評価 High-throughput multiplex voltage-clamp/current-clamp evaluation of acutely isolated neurons

Mohammad-Reza Ghovanloo,Sidharth Tyagi,Peng Zhao,Emre Kiziltug,Mark Estacion,Philip R. Effraim,Sulayman D. Dib-Hajj & Stephen G. Waxman
Nature Protocols  Published:13 June 2025
DOI:https://doi.org/10.1038/s41596-025-01194-0

神経科学研究を加速する高速自動電気生理学(Advancing neuroscience research with high-speed automated electrophysiology)

Abstract

The patch-clamp technique remains the gold-standard for the investigation of excitable cells. However, the manual implementation of this technique is slow and low throughput. While recently developed high-throughput robotic patch-clamp methods have proven valuable for drug screening, they have predominantly focused on investigating receptors and channels overexpressed in heterologous cell lines. We recently developed an automated high-throughput patch-clamp approach that enables the simultaneous and unbiased analysis of acutely dissociated neurons in their native state. To analyze and manage the large and complex datasets resulting from this methodology, we have also developed open-source software with an easy-to-use graphical user interface to fit data from each neuron with appropriate biophysical equations to functionally characterize each individual neuron. Here we describe a protocol that provides a streamlined set of procedures, including (1) the dissociation and isolation of neurons from intact tissue; (2) the designing and performing of patch-clamp experiments on the robotic system; and (3) the analysis of data using predetermined, unbiased filtration criteria. This methodology can be used for diverse applications ranging from the assessment of neuronal biophysics to drug development. The protocol requires 6–18 h including cell preparation, experimental execution and analysis of the generated data. Graduate-student-level expertise in animal dissection, electrophysiology and biophysics is required.

Key points

  • Protocol for automated, high-throughput patch-clamp, enabling the simultaneous and unbiased analysis of dissociated neurons in their native state. It covers the isolation of neurons from intact tissue, the design and execution of automated patch-clamp experiments and unbiased data analysis.
  • Compared with conventional, low-throughput methods, our approach enables the investigation of the varied biophysical signatures and pharmacological sensitivities of native neurons.
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