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用于对光敏感脑组织中的神经活动进行光学刺激和时空电记录的集成装置。

Integrated device for optical stimulation and spatiotemporal electrical recording of neural activity in light-sensitized brain tissue.

作者信息

Zhang Jiayi, Laiwalla Farah, Kim Jennifer A, Urabe Hayato, Van Wagenen Rick, Song Yoon-Kyu, Connors Barry W, Zhang Feng, Deisseroth Karl, Nurmikko Arto V

机构信息

Department of Physics, Brown University, Providence, RI 02912, USA.

出版信息

J Neural Eng. 2009 Oct;6(5):055007. doi: 10.1088/1741-2560/6/5/055007. Epub 2009 Sep 1.

Abstract

Neural stimulation with high spatial and temporal precision is desirable both for studying the real-time dynamics of neural networks and for prospective clinical treatment of neurological diseases. Optical stimulation of genetically targeted neurons expressing the light sensitive channel protein Channelrhodopsin (ChR2) has recently been reported as a means for millisecond temporal control of neuronal spiking activities with cell-type selectivity. This offers the prospect of enabling local delivery of optical stimulation and the simultaneous monitoring of the neural activity by electrophysiological means, both in the vicinity of and distant to the stimulation site. We report here a novel dual-modality hybrid device, which consists of a tapered coaxial optical waveguide ('optrode') integrated into a 100 element intra-cortical multi-electrode recording array. We first demonstrate the dual optical delivery and electrical recording capability of the single optrode in in vitro preparations of mouse retina, photo-stimulating the native retinal photoreceptors while recording light-responsive activities from ganglion cells. The dual-modality array device was then used in ChR2 transfected mouse brain slices. Specifically, epileptiform events were reliably optically triggered by the optrode and their spatiotemporal patterns were simultaneously recorded by the multi-electrode array.

摘要

对于研究神经网络的实时动态以及神经疾病的前瞻性临床治疗而言,具备高空间和时间精度的神经刺激都是十分必要的。最近有报道称,对表达光敏感通道蛋白嗜盐菌紫质(ChR2)的基因靶向神经元进行光刺激,是一种能够以细胞类型选择性对神经元放电活动进行毫秒级时间控制的方法。这为在刺激部位附近及远处实现光刺激的局部递送以及通过电生理手段同步监测神经活动提供了前景。我们在此报告一种新型的双模态混合装置,它由集成到100元件皮质内多电极记录阵列中的锥形同轴光波导(“光电极”)组成。我们首先在小鼠视网膜的体外制剂中展示了单个光电极的双光递送和电记录能力,在记录神经节细胞的光响应活动时对天然视网膜光感受器进行光刺激。然后,将双模态阵列装置用于ChR2转染的小鼠脑片。具体而言,光电极能可靠地光学触发癫痫样事件,多电极阵列同时记录其时空模式。

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