Xue Feng, Li Fei, Zhang Ke-Ming, Ding Lufeng, Wang Yang, Zhao Xingtao, Xu Fang, Zhang Danke, Sun Mingzhai, Lau Pak-Ming, Zhu Qingyuan, Zhou Pengcheng, Bi Guo-Qiang
Department of Precision Machinery and Precision Instruments, University of Science and Technology of China, Hefei 230026, China.
Hefei National Laboratory for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei 230026, China.
Natl Sci Rev. 2023 Nov 20;11(1):nwad294. doi: 10.1093/nsr/nwad294. eCollection 2024 Jan.
To investigate the circuit-level neural mechanisms of behavior, simultaneous imaging of neuronal activity in multiple cortical and subcortical regions is highly desired. Miniature head-mounted microscopes offer the capability of calcium imaging in freely behaving animals. However, implanting multiple microscopes on a mouse brain remains challenging due to space constraints and the cumbersome weight of the equipment. Here, we present TINIscope, a Tightly Integrated Neuronal Imaging microscope optimized for electronic and opto-mechanical design. With its compact and lightweight design of 0.43 g, TINIscope enables unprecedented simultaneous imaging of behavior-relevant activity in up to four brain regions in mice. Proof-of-concept experiments with TINIscope recorded over 1000 neurons in four hippocampal subregions and revealed concurrent activity patterns spanning across these regions. Moreover, we explored potential multi-modal experimental designs by integrating additional modules for optogenetics, electrical stimulation or local field potential recordings. Overall, TINIscope represents a timely and indispensable tool for studying the brain-wide interregional coordination that underlies unrestrained behaviors.
为了研究行为的电路级神经机制,非常需要对多个皮质和皮质下区域的神经元活动进行同步成像。微型头戴式显微镜能够对自由活动的动物进行钙成像。然而,由于空间限制和设备的笨重重量,在小鼠大脑上植入多个显微镜仍然具有挑战性。在这里,我们展示了TINIscope,一种针对电子和光机电设计进行优化的紧密集成神经元成像显微镜。TINIscope采用紧凑轻便的设计,重量仅为0.43克,能够对小鼠多达四个脑区中与行为相关的活动进行前所未有的同步成像。使用TINIscope进行的概念验证实验记录了四个海马亚区的1000多个神经元,并揭示了跨越这些区域的并发活动模式。此外,我们通过集成用于光遗传学、电刺激或局部场电位记录的附加模块,探索了潜在的多模态实验设计。总体而言,TINIscope是研究构成无约束行为基础的全脑区域间协调的及时且不可或缺的工具。