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Low-threshold, high-resolution, chronically stable intracortical microstimulation by ultraflexible electrodes.


ABSTRACT: Intracortical microstimulation (ICMS) enables applications ranging from neuroprosthetics to causal circuit manipulations. However, the resolution, efficacy, and chronic stability of neuromodulation is often compromised by the adverse tissue responses to the indwelling electrodes. Here we engineer ultraflexible stim-Nanoelectronic Threads (StimNETs) and demonstrate low activation threshold, high resolution, and chronically stable ICMS in awake, behaving mouse models. In vivo two-photon imaging reveals that StimNETs remain seamlessly integrated with the nervous tissue throughout chronic stimulation periods and elicit stable, focal neuronal activation at low currents of 2 μA. Importantly, StimNETs evoke longitudinally stable behavioral responses for over eight months at markedly low charge injection of 0.25 nC/phase. Quantified histological analysis show that chronic ICMS by StimNETs induce no neuronal degeneration or glial scarring. These results suggest that tissue-integrated electrodes provide a path for robust, long-lasting, spatially-selective neuromodulation at low currents which lessen risks of tissue damage or exacerbation of off-target side-effects.

SUBMITTER: Lycke R 

PROVIDER: S-EPMC9980065 | biostudies-literature | 2023 Feb

REPOSITORIES: biostudies-literature

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Low-threshold, high-resolution, chronically stable intracortical microstimulation by ultraflexible electrodes.

Lycke Roy R   Kim Robin R   Zolotavin Pavlo P   Montes Jon J   Sun Yingchu Y   Koszeghy Aron A   Altun Esra E   Noble Brian B   Yin Rongkang R   He Fei F   Totah Nelson N   Xie Chong C   Luan Lan L  

bioRxiv : the preprint server for biology 20230221


Intracortical microstimulation (ICMS) enables applications ranging from neuroprosthetics to causal circuit manipulations. However, the resolution, efficacy, and chronic stability of neuromodulation is often compromised by the adverse tissue responses to the indwelling electrodes. Here we engineer ultraflexible stim-Nanoelectronic Threads (StimNETs) and demonstrate low activation threshold, high resolution, and chronically stable ICMS in awake, behaving mouse models. <i>In vivo</i> two-photon ima  ...[more]

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