Wu Xiaoting, Yang Xiangyu, Song Lulu, Wang Yang, Li Yamin, Liu Yuanyuan, Yang Xiaowei, Wang Yijun, Pei Weihua, Li Weidong
The State Key Laboratory on Integrated Optoelectronics, Institute of Semiconductors, Chinese Academy of Sciences, Beijing, China.
University of Chinese Academy of Sciences, Beijing, China.
Front Integr Neurosci. 2021 Aug 16;15:682019. doi: 10.3389/fnint.2021.682019. eCollection 2021.
The miniscope system is one of the calcium (Ca) imaging tools with small size and lightweight and can realize the deep-brain Ca imaging not confined to the cerebral cortex. Combining Ca imaging and electrophysiology recording has been an efficient method for extracting high temporal-spatial resolution signals in the brain. In this study, a particular electrode probe was developed and assembled on the imaging lens to modify the miniscope system. The electrode probe can be tightly integrated into the lens of the miniscope without increasing the volume, weight, and implantation complexity. tests verified that the proposed modified system has realized the simultaneous recording of Ca signals and local field potential (LFP) signal in the hippocampus CA1 region of an adult mouse.
微型显微镜系统是一种体积小、重量轻的钙(Ca)成像工具,能够实现不限于大脑皮层的深部脑区钙成像。将钙成像与电生理记录相结合一直是提取大脑中高时空分辨率信号的有效方法。在本研究中,开发了一种特殊的电极探针并将其组装在成像镜头上以改进微型显微镜系统。该电极探针可以紧密集成到微型显微镜的镜头中,而不会增加体积、重量和植入复杂性。测试证实,所提出的改进系统已在成年小鼠海马CA1区实现了钙信号和局部场电位(LFP)信号的同步记录。