Ultraflexible nanoelectronic probes form reliable, glial scar–free neural integration
计算机科学
神经科学
生物
作者
Lan Luan,Xiaoling Wei,Zhengtuo Zhao,Jennifer J. Siegel,Ojas Potnis,C. Anne Tuppen,S. Lin,Shams Kazmi,R. Andrew Fowler,Stewart Holloway,Andrew K. Dunn,Raymond A. Chitwood,Chong Xie
出处
期刊:Science Advances [American Association for the Advancement of Science] 日期:2017-02-03卷期号:3 (2)被引量:507
Implanted brain electrodes construct the only means to electrically interface with individual neurons in vivo, but their recording efficacy and biocompatibility pose limitations on scientific and clinical applications. We showed that nanoelectronic thread (NET) electrodes with subcellular dimensions, ultraflexibility, and cellular surgical footprints form reliable, glial scar-free neural integration. We demonstrated that NET electrodes reliably detected and tracked individual units for months; their impedance, noise level, single-unit recording yield, and the signal amplitude remained stable during long-term implantation. In vivo two-photon imaging and postmortem histological analysis revealed seamless, subcellular integration of NET probes with the local cellular and vasculature networks, featuring fully recovered capillaries with an intact blood-brain barrier and complete absence of chronic neuronal degradation and glial scar.