Kodandaramaiah Suhasa B, Flores Francisco J, Holst Gregory L, Singer Annabelle C, Han Xue, Brown Emery N, Boyden Edward S, Forest Craig R
Media Lab, Massachusetts Institute of Technology, Cambridge, United States.
McGovern Institute for Brain Research, Massachusetts Institute of Technology, Cambridge, United States.
Elife. 2018 Jan 3;7:e24656. doi: 10.7554/eLife.24656.
The activities of groups of neurons in a circuit or brain region are important for neuronal computations that contribute to behaviors and disease states. Traditional extracellular recordings have been powerful and scalable, but much less is known about the intracellular processes that lead to spiking activity. We present a robotic system, the multipatcher, capable of automatically obtaining blind whole-cell patch clamp recordings from multiple neurons simultaneously. The multipatcher significantly extends automated patch clamping, or 'autopatching', to guide four interacting electrodes in a coordinated fashion, avoiding mechanical coupling in the brain. We demonstrate its performance in the cortex of anesthetized and awake mice. A multipatcher with four electrodes took an average of 10 min to obtain dual or triple recordings in 29% of trials in anesthetized mice, and in 18% of the trials in awake mice, thus illustrating practical yield and throughput to obtain multiple, simultaneous whole-cell recordings in vivo.
神经回路或脑区中神经元群体的活动对于促成行为和疾病状态的神经计算很重要。传统的细胞外记录功能强大且可扩展,但对于导致动作电位发放活动的细胞内过程却知之甚少。我们展示了一种机器人系统——多电极膜片钳系统,它能够同时自动从多个神经元获取盲态全细胞膜片钳记录。多电极膜片钳系统显著扩展了自动膜片钳技术,即“自动封接”,能够以协调的方式引导四个相互作用的电极,避免大脑中的机械耦合。我们展示了它在麻醉和清醒小鼠皮层中的性能。配备四个电极的多电极膜片钳系统在麻醉小鼠的29%的试验中平均花费10分钟获得双细胞或三细胞记录,在清醒小鼠的18%的试验中也是如此,从而说明了在体内获得多个同时全细胞记录的实际产量和通量。