Laboratory for Neuro- and Psychophysiology, KU Leuven, Leuven 3000, Belgium.
Leuven Brain Institute, KU Leuven, Leuven 3000, Belgium.
J Neural Eng. 2022 Dec 19;19(6). doi: 10.1088/1741-2552/ac98e2.
Basic, translational and clinical neuroscience are increasingly focusing on large-scale invasive recordings of neuronal activity. However, in large animals such as nonhuman primates and humans-in which the larger brain size with sulci and gyri imposes additional challenges compared to rodents, there is a huge unmet need to record from hundreds of neurons simultaneously anywhere in the brain for long periods of time. Here, we tested the electrical and mechanical properties of thin, flexible multi-electrode arrays (MEAs) inserted into the primary visual cortex of two macaque monkeys, and assessed their magnetic resonance imaging (MRI) compatibility and their capacity to record extracellular activity over a period of 1 year.To allow insertion of the floating arrays into the visual cortex, the 20 by 100mshafts were temporarily strengthened by means of a resorbable poly(lactic-co-glycolic acid) coating.. After manual insertion of the arrays, theandMRI compatibility of the arrays proved to be excellent. We recorded clear single-unit activity from up to 50% of the electrodes, and multi-unit activity (MUA) on 60%-100% of the electrodes, which allowed detailed measurements of the receptive fields and the orientation selectivity of the neurons. Even 1 year after insertion, we obtained significant MUA responses on 70%-100% of the electrodes, while the receptive fields remained remarkably stable over the entire recording period.Thus, the thin and flexible MEAs we tested offer several crucial advantages compared to existing arrays, most notably in terms of brain tissue compliance, scalability, and brain coverage. Future brain-machine interface applications in humans may strongly benefit from this new generation of chronically implanted MEAs.
基础、转化和临床神经科学越来越关注大规模的神经元活动的侵入性记录。然而,在大型动物(如非人类灵长类动物和人类)中,由于脑回和脑沟的尺寸较大,与啮齿动物相比,存在着在大脑的任何部位同时记录数百个神经元并长时间记录的巨大未满足需求。在这里,我们测试了薄而灵活的多电极阵列(MEA)插入两只猕猴初级视觉皮层的电和机械性能,并评估了它们的磁共振成像(MRI)兼容性以及在 1 年内记录细胞外活动的能力。为了允许浮动阵列插入到视觉皮层,20×100μm的轴暂时用可吸收的聚(乳酸-共-乙醇酸)涂层加固。阵列的插入后,MRI 兼容性证明非常好。我们从多达 50%的电极记录到清晰的单细胞活动,从 60%-100%的电极记录到多单位活动(MUA),这允许对神经元的感受野和方位选择性进行详细测量。即使在插入 1 年后,我们在 70%-100%的电极上仍获得了显著的 MUA 反应,而感受野在整个记录期间保持显著稳定。因此,与现有阵列相比,我们测试的薄而灵活的 MEA 具有几个关键优势,尤其是在脑组织顺应性、可扩展性和脑覆盖方面。未来人类的脑机接口应用可能会从这新一代慢性植入的 MEA 中受益。