Howard Hughes Medical Institute, Janelia Research Campus, Ashburn, VA, USA.
Nat Biomed Eng. 2019 Sep;3(9):741-753. doi: 10.1038/s41551-019-0373-8. Epub 2019 Apr 1.
Electrophysiology is the most used approach for the collection of functional data in basic and translational neuroscience, but it is typically limited to either intracellular or extracellular recordings. The integration of multiple physiological modalities for the routine acquisition of multimodal data with microelectrodes could be useful for biomedical applications, yet this has been challenging owing to incompatibilities of fabrication methods. Here, we present a suite of glass pipettes with integrated microelectrodes for the simultaneous acquisition of multimodal intracellular and extracellular information in vivo, electrochemistry assessments, and optogenetic perturbations of neural activity. We used the integrated devices to acquire multimodal signals from the CA1 region of the hippocampus in mice and rats, and show that these data can serve as ground-truth validation for the performance of spike-sorting algorithms. The microdevices are applicable for basic and translational neurobiology, and for the development of next-generation brain-machine interfaces.
电生理学是基础和转化神经科学中最常用的功能数据收集方法,但它通常仅限于细胞内或细胞外记录。通过微电极集成多种生理模式来常规获取多模态数据对于生物医学应用可能很有用,但由于制造方法不兼容,这一直具有挑战性。在这里,我们提出了一套带有集成微电极的玻璃吸管,用于在体内同时获取多模态细胞内和细胞外信息、电化学评估以及神经活动的光遗传学干扰。我们使用集成设备从小鼠和大鼠的海马 CA1 区获取多模态信号,并表明这些数据可作为用于验证尖峰分类算法性能的基准。这些微器件适用于基础和转化神经生物学,以及开发下一代脑机接口。