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闭环光遗传学脑机接口

Closed-Loop Optogenetic Brain Interface.

作者信息

Pashaie Ramin, Baumgartner Ryan, Richner Thomas J, Brodnick Sarah K, Azimipour Mehdi, Eliceiri Kevin W, Williams Justin C

出版信息

IEEE Trans Biomed Eng. 2015 Oct;62(10):2327-37. doi: 10.1109/TBME.2015.2436817. Epub 2015 May 22.

Abstract

This paper presents a new approach for implementation of closed-loop brain-machine interface algorithms by combining optogenetic neural stimulation with electrocorticography and fluorescence microscopy. We used a new generation of microfabricated electrocorticography (micro-ECoG) devices in which electrode arrays are embedded within an optically transparent biocompatible substrate that provides optical access to the brain tissue during electrophysiology recording. An optical setup was designed capable of projecting arbitrary patterns of light for optogenetic stimulation and performing fluorescence microscopy through the implant. For realization of a closed-loop system using this platform, the feedback can be taken from electrophysiology data or fluorescence imaging. In the closed-loop systems discussed in this paper, the feedback signal was taken from the micro-ECoG. In these algorithms, the electrophysiology data are continuously transferred to a computer and compared with some predefined spatial-temporal patterns of neural activity. The computer which processes the data also readjusts the duration and distribution of optogenetic stimulating pulses to minimize the difference between the recorded activity and the predefined set points so that after a limited period of transient response the recorded activity follows the set points. Details of the system design and implementation of typical closed-loop paradigms are discussed in this paper.

摘要

本文提出了一种通过将光遗传学神经刺激与皮质脑电图和荧光显微镜相结合来实现闭环脑机接口算法的新方法。我们使用了新一代的微制造皮质脑电图(micro-ECoG)设备,其中电极阵列嵌入在光学透明的生物相容性基质中,该基质在电生理记录期间提供对脑组织的光学通路。设计了一种光学装置,能够投射用于光遗传学刺激的任意光图案,并通过植入物进行荧光显微镜检查。为了使用该平台实现闭环系统,可以从电生理数据或荧光成像中获取反馈。在本文讨论的闭环系统中,反馈信号取自micro-ECoG。在这些算法中,电生理数据被连续传输到计算机,并与一些预定义的神经活动时空模式进行比较。处理数据的计算机还会重新调整光遗传学刺激脉冲的持续时间和分布,以最小化记录的活动与预定义设定点之间的差异,从而在有限的瞬态响应期后,记录的活动遵循设定点。本文讨论了系统设计细节和典型闭环范式的实现。

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