| Literature DB >> 31989934 |
Bowen Ji1, Chaofan Ge2, Zhejun Guo1, Longchun Wang1, Minghao Wang3, Zhaoqian Xie4, Yeshou Xu5, Haibo Li6, Bin Yang1, Xiaolin Wang1, Chengyu Li7, Jingquan Liu8.
Abstract
Optogenetic-based neuromodulation tools is evolving for the basic neuroscience research in animals combining optical manipulation and electrophysiological recordings. However, current opto-electric integrated devices attaching on cerebral cortex for electrocorticogram (ECoG) still exist potential damage risks for both brain tissue and electrode, due to the mechanical mismatch and brain deformation. Here, we propose a stretchable opto-electric integrated neural interface by integrating serpentine-shaped electrodes and multisite micro-LEDs onto a hyperelastic substrate, as well as a serpentine-shaped metal shielding embedded in recording electrode for low-noise signal acquisition. The delicate structure design, ultrasoft encapsulation and independent fabrication followed by assembly are beneficial to the conformality, reliability and yield. In vitro accelerated deterioration and reciprocating tensile have demonstrated good performance and high stability. In vivo optogenetic activation of focal cortical areas of awaked mouse expressing Channelrhodopsin-2 is realized with simultaneous high-quality recording. We highlight the potential use of this multifunctional neural interface for neural applications.Entities:
Keywords: Electrocorticogram recordings; Low-noise; Micro-LEDs; Opto-electric neural interface; Optogenetics; Stretchability
Year: 2020 PMID: 31989934 DOI: 10.1016/j.bios.2020.112009
Source DB: PubMed Journal: Biosens Bioelectron ISSN: 0956-5663 Impact factor: 10.618