Wireless bioresorbable electronic system enables sustained nonpharmacological neuroregenerative therapy.

Koo, Jahyun; MacEwan, Matthew R; Kang, Seung-Kyun; Won, Sang Min; Stephen, Manu; Gamble, Paul; Xie, Zhaoqian; Yan, Ying et al. · Nat Med · 2018

basic_science · Level V

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Abstract

Peripheral nerve injuries represent a significant problem in public health, constituting 2-5% of all trauma cases<sup>1</sup>. For severe nerve injuries, even advanced forms of clinical intervention often lead to incomplete and unsatisfactory motor and/or sensory function<sup>2</sup>. Numerous studies report the potential of pharmacological approaches (for example, growth factors, immunosuppressants) to accelerate and enhance nerve regeneration in rodent models<sup>3-10</sup>. Unfortunately, few have had a positive impact in clinical practice. Direct intraoperative electrical stimulation of injured nerve tissue proximal to the site of repair has been demonstrated to enhance and accelerate functional recovery<sup>11,12</sup>, suggesting a novel nonpharmacological, bioelectric form of therapy that could complement existing surgical approaches. A significant limitation of this technique is that existing protocols are constrained to intraoperative use and limited therapeutic benefits<sup>13</sup>. Herein we introduce (i) a platform for wireless, programmable electrical peripheral nerve stimulation, built with a collection of circuit elements and substrates that are entirely bioresorbable and biocompatible, and (ii) the first reported demonstration of enhanced neuroregeneration and functional recovery in rodent models as a result of multiple episodes of electrical stimulation of injured nervous tissue.

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