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Ultraflexible nanoelectronic probes form reliable glial scar–free neural integration

机译:超柔纳米电子探针可形成可靠的无胶质瘢痕神经整合

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摘要

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.
机译:植入的脑电极构成了在体内与单个神经元电接口的唯一方法,但其记录功效和生物相容性对科学和临床应用构成了限制。我们发现具有亚细胞尺寸,超柔韧性和细胞外科手术足迹的纳米电子线(NET)电极可形成可靠的无胶质瘢痕神经整合。我们证明了NET电极可以可靠地检测并跟踪数月的单个单元;在长期植入过程中,它们的阻抗,噪声水平,单个单位的记录产量以及信号幅度保持稳定。体内双光子成像和验尸组织学分析显示,NET探针与局部细胞和脉管系统网络无缝,亚细胞整合,具有完全恢复的毛细血管和完整的血脑屏障,并且完全没有慢性神经元降解和神经胶质瘢痕。

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