毫秒
计算机科学
全息术
光遗传学
运动前神经元活动
显微镜
视皮层
神经科学
光学
计算机视觉
人工智能
物理
生物
天文
作者
Walther Akemann,Sébastien Wolf,Vincent Villette,Benjamin Mathieu,Astou Tangara,Jozsua Fodor,Cathie Ventalon,Jean‐François Léger,Stéphane Dieudonné,Laurent Bourdieu
出处
期刊:Nature Methods
[Springer Nature]
日期:2021-12-23
卷期号:19 (1): 100-110
被引量:25
标识
DOI:10.1038/s41592-021-01329-7
摘要
Optical recording of neuronal activity in three-dimensional (3D) brain circuits at cellular and millisecond resolution in vivo is essential for probing information flow in the brain. While random-access multiphoton microscopy permits fast optical access to neuronal targets in three dimensions, the method is challenged by motion artifacts when recording from behaving animals. Therefore, we developed three-dimensional custom-access serial holography (3D-CASH). Built on a fast acousto-optic light modulator, 3D-CASH performs serial sampling at 40 kHz from neurons at freely selectable 3D locations. Motion artifacts are eliminated by targeting each neuron with a size-optimized pattern of excitation light covering the cell body and its anticipated displacement field. Spike rates inferred from GCaMP6f recordings in visual cortex of awake mice tracked the phase of a moving bar stimulus with higher spike correlation between intra compared to interlaminar neuron pairs. 3D-CASH offers access to the millisecond correlation structure of in vivo neuronal activity in 3D microcircuits.
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