光遗传学
电生理学
神经科学
计算机科学
颅骨
神经活动
生物
解剖
作者
Corbett Bennett,Ben Ouellette,Tamina K. Ramirez,Alex Cahoon,Hannah Cabasco,Yoni Browning,Anna Lakunina,Galen F. Lynch,Ethan G. McBride,Hannah Belski,Ryan Gillis,Conor Grasso,Robert Howard,Tye Johnson,Henry Loeffler,Heston Smith,David J. Sullivan,Allison Williford,Shiella Caldejon,Séverine Durand
出处
期刊:Neuron
[Cell Press]
日期:2024-07-11
卷期号:112 (17): 2869-2885.e8
被引量:4
标识
DOI:10.1016/j.neuron.2024.06.015
摘要
To understand the neural basis of behavior, it is essential to measure spiking dynamics across many interacting brain regions. Although new technologies, such as Neuropixels probes, facilitate multi-regional recordings, significant surgical and procedural hurdles remain for these experiments to achieve their full potential. Here, we describe skull-shaped hemispheric implants enabling large-scale electrophysiology datasets (SHIELD). These 3D-printed skull-replacement implants feature customizable insertion holes, allowing dozens of cortical and subcortical structures to be recorded in a single mouse using repeated multi-probe insertions over many days. We demonstrate the procedure's high success rate, biocompatibility, lack of adverse effects on behavior, and compatibility with imaging and optogenetics. To showcase SHIELD's scientific utility, we use multi-probe recordings to reveal novel insights into how alpha rhythms organize spiking activity across visual and sensorimotor networks. Overall, this method enables powerful, large-scale electrophysiological experiments for the study of distributed neural computation.
科研通智能强力驱动
Strongly Powered by AbleSci AI