Edmond and Lily Safra Center for Brain Science, The Hebrew University of Jerusalem, Jerusalem, Israel.
J Neurosci Methods. 2021 Apr 1;353:109101. doi: 10.1016/j.jneumeth.2021.109101. Epub 2021 Feb 15.
Technology for simultaneous control and readout of the membrane potential of multiple neurons in behaving animals at high spatio-temporal resolution will have a high impact on neuroscience research. Significant progress in the development of Genetically Encoded Voltage Indicators (GEVIs) now enables to optically record subthreshold and spiking activity from ensembles of cells in behaving animals. In some cases, the GEVIs were also combined with optogenetic actuators to enable 'all-optical' control and readout of membrane potential at cellular resolution. Here I describe the recent progress in GEVI development and discuss the various aspects necessary to perform a successful 'all-optical' electrophysiology experiment in behaving, head-fixed animals. These aspects include the voltage indicators, the optogenetic actuators, strategies for protein expression, optical hardware, and image processing software. Furthermore, I discuss various applications of the technology, highlighting its advantages over classic electrode-based techniques. I argue that GEVIs now transformed from a 'promising' technology to a practical tool that can be used to tackle fundamental questions in neuroscience.
同时控制和读取行为动物中多个神经元膜电位的技术将对神经科学研究产生重大影响。基因编码电压指示剂 (GEVI) 的开发取得了重大进展,现在能够从行为动物的细胞群体中光学记录亚阈值和尖峰活动。在某些情况下,GEVI 还与光遗传学致动器结合使用,以实现细胞分辨率的膜电位“全光学”控制和读取。在这里,我描述了 GEVIs 开发的最新进展,并讨论了在头部固定动物中进行成功的“全光学”电生理学实验所需的各个方面。这些方面包括电压指示剂、光遗传学致动器、蛋白质表达策略、光学硬件和图像处理软件。此外,我还讨论了该技术的各种应用,强调了它相对于经典基于电极的技术的优势。我认为,GEVI 现在已经从一种“有前途”的技术转变为一种实用工具,可以用于解决神经科学中的基本问题。