首页> 美国卫生研究院文献>Frontiers in Systems Neuroscience >The flexDrive: an ultra-light implant for optical control and highly parallel chronic recording of neuronal ensembles in freely moving mice
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The flexDrive: an ultra-light implant for optical control and highly parallel chronic recording of neuronal ensembles in freely moving mice

机译:flexDrive:一种超轻型植入物用于光学控制和高度平行地慢性记录自由移动小鼠的神经元集成体

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摘要

Electrophysiological recordings from ensembles of neurons in behaving mice are a central tool in the study of neural circuits. Despite the widespread use of chronic electrophysiology, the precise positioning of recording electrodes required for high-quality recordings remains a challenge, especially in behaving mice. The complexity of available drive mechanisms, combined with restrictions on implant weight tolerated by mice, limits current methods to recordings from no more than 4–8 electrodes in a single target area. We developed a highly miniaturized yet simple drive design that can be used to independently position 16 electrodes with up to 64 channels in a package that weighs ~2 g. This advance over current designs is achieved by a novel spring-based drive mechanism that reduces implant weight and complexity. The device is easy to build and accommodates arbitrary spatial arrangements of electrodes. Multiple optical fibers can be integrated into the recording array and independently manipulated in depth. Thus, our novel design enables precise optogenetic control and highly parallel chronic recordings of identified single neurons throughout neural circuits in mice.
机译:行为小鼠神经元集合的电生理记录是研究神经回路的主要工具。尽管慢性电生理学已被广泛使用,但是高质量记录所需的记录电极的精确定位仍然是一个挑战,特别是在行为小鼠中。现有驱动机制的复杂性,再加上小鼠对植入物重量的限制,将当前方法限制为在单个目标区域内从不超过4-8个电极进行记录。我们开发了高度小型化但简单的驱动器设计,可用于在重约2 g的包装中独立放置多达64个通道的16个电极。通过一种新颖的基于弹簧的驱动机构,可以减轻当前植入物的重量并降低其复杂性,从而超越了当前的设计。该装置易于制造并且可容纳电极的任意空间布置。可以将多根光纤集成到记录阵列中,并在深度上进行独立操作。因此,我们新颖的设计能够对小鼠整个神经回路中的单个神经元进行精确的光遗传学控制和高度平行的慢性记录。

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