一种波长可寻址装置对神经组织无线刺激的选择性改进。

Frontiers in neuroengineering Pub Date : 2014-02-18 eCollection Date: 2014-01-01 DOI:10.3389/fneng.2014.00005
Elif Ç Seymour, David S Freedman, Mutlu Gökkavas, Ekmel Ozbay, Mesut Sahin, M Selim Unlü
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引用次数: 18

摘要

微电极神经电刺激是一种很有前途的技术,用于恢复中枢神经系统因损伤或疾病而丧失的功能。与当前神经刺激器相关的问题之一是由于连接导线和软神经组织内刚性电极的存在而引起的组织反应。我们已经开发了一种新颖的、光激活的、基于定制层状化合物半导体异质结构的微尺度光伏神经刺激器,它是无线的,并且体积相对较小(
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Improved selectivity from a wavelength addressable device for wireless stimulation of neural tissue.

Improved selectivity from a wavelength addressable device for wireless stimulation of neural tissue.

Improved selectivity from a wavelength addressable device for wireless stimulation of neural tissue.

Improved selectivity from a wavelength addressable device for wireless stimulation of neural tissue.

Electrical neural stimulation with micro electrodes is a promising technique for restoring lost functions in the central nervous system as a result of injury or disease. One of the problems related to current neural stimulators is the tissue response due to the connecting wires and the presence of a rigid electrode inside soft neural tissue. We have developed a novel, optically activated, microscale photovoltaic neurostimulator based on a custom layered compound semiconductor heterostructure that is both wireless and has a comparatively small volume (<0.01 mm(3)). Optical activation provides a wireless means of energy transfer to the neurostimulator, eliminating wires and the associated complications. This neurostimulator was shown to evoke action potentials and a functional motor response in the rat spinal cord. In this work, we extend our design to include wavelength selectivity and thus allowing independent activation of devices. As a proof of concept, we fabricated two different microscale devices with different spectral responsivities in the near-infrared region. We assessed the improved addressability of individual devices via wavelength selectivity as compared to spatial selectivity alone through on-bench optical measurements of the devices in combination with an in vivo light intensity profile in the rat cortex obtained in a previous study. We show that wavelength selectivity improves the individual addressability of the floating stimulators, thus increasing the number of devices that can be implanted in close proximity to each other.

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