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首页> 外文期刊>Journal of Neuroscience Methods >A simple method of in vitro electroporation allows visualization, recording, and calcium imaging of local neuronal circuits.
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A simple method of in vitro electroporation allows visualization, recording, and calcium imaging of local neuronal circuits.

机译:一种简单的体外电穿孔方法可以对局部神经元回路进行可视化,记录和钙成像。

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摘要

Since Cajal's early drawings, the characterization of neuronal architecture has been paramount in understanding neuronal function. With the development of electrophysiological techniques that provide unprecedented access to the physiology of these cells, experimental questions of neuronal function have also become more tractable. Fluorescent tracers that can label the anatomy of individual or populations of neurons have opened the door to linking anatomy with physiology. Experimentally however, current techniques for bulk labeling of cells in vitro often affect neuronal function creating a barrier for exploring structure-function questions. Here we describe a new technique for highly localized electroporation within a cell or cell population that enables the introduction of membrane impermeable charged dyes including dextran-conjugated fluorophores, hydrazide tracers, and calcium indicator dyes in vitro. We demonstrate that this technique is highly versatile, allowing for labeling of large or small areas of tissue, allowing for the investigation of both cellular morphology and physiological activity in identified neuronal circuits in acute brain slices. Furthermore, this approach allows subsequent targeted whole-cell patch recording based on well-defined connectivity as well as assessment of physiological activity in targeted circuits on a fast time scale.
机译:自从Cajal的早期绘画以来,神经元结构的表征对于理解神经元功能至关重要。随着电生理技术的发展,提供了对这些细胞生理学的前所未有的访问,神经元功能的实验问题也变得更加易于处理。可以标记个体或神经元群体解剖结构的荧光示踪剂为将解剖结构与生理学联系起来打开了大门。然而,在实验上,目前体外大量标记细胞的技术通常会影响神经元功能,从而为探索结构功能问题创造了障碍。在这里,我们描述了一种在细胞或细胞群内进行高度局部电穿孔的新技术,该技术能够在体外引入膜不渗透的带电染料,包括右旋糖酐共轭的荧光团,酰肼示踪剂和钙指示剂。我们证明了这项技术是高度通用的,允许标记组织的大或小区域,从而允许对急性脑切片中已确定的神经元回路中的细胞形态和生理活性进行调查。此外,该方法允许基于定义明确的连接性进行后续的有针对性的全细胞补丁记录,以及在快速时间范围内评估目标电路中的生理活动。

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