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Functional brain fluorescence plurimetry in rat by implantable concatenated CMOS imaging system

机译:可植入级联CMOS成像系统在大鼠中进行功能性脑荧光测定

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摘要

Measurement of brain activity in multiple areas simultaneously by minimally invasive methods contributes to the study of neuroscience and development of brain machine interfaces. However, this requires compact wearable instruments that do not inhibit natural movements. Application of optical potentiometry with voltage-sensitive fluorescent dye using an implantable image sensor is also useful. However, the increasing number of leads required for the multiple wired sensors to measure larger domains inhibits natural behavior. For imaging broad areas by numerous sensors without excessive wiring, a web-like sensor that can wrap the brain was developed. Kaleidoscopic potentiometry is possible using the imaging system with concatenated sensors by changing the alignment of the sensors. This paper describes organization of the system, evaluation of the system by a fluorescence imaging, and finally, functional brain fluorescence plurimetry by the sensor. The recorded data in rat somatosensory cortex using the developed multiple-area imaging system compared well with electrophysiology results.
机译:通过微创方法同时测量多个区域的大脑活动有助于神经科学的研究和脑机接口的发展。然而,这需要不抑制自然运动的紧凑型可穿戴器械。使用植入式图像传感器对电压敏感型荧光染料进行光电位测定也是有用的。但是,多个有线传感器测量较大区域所需的导线数量不断增加,这会抑制自然行为。为了通过众多传感器在不进行过多布线的情况下对广阔的区域成像,开发了一种可以包裹大脑的网状传感器。通过将成像系统与串联的传感器配合使用,可以通过更改传感器的对齐方式来实现万花筒电位计。本文描述了系统的组织,通过荧光成像对系统的评估,最后是通过传感器进行的功能性大脑荧光多能测定。使用发达的多区域成像系统在大鼠体感皮层中记录的数据与电生理结果进行了比较。

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