Morphing electronics enable neuromodulation in growing tissue.

Liu, Yuxin; Li, Jinxing; Song, Shang; Kang, Jiheong; Tsao, Yuchi; Chen, Shucheng; Mottini, Vittorio; McConnell, Kelly et al. · Nat Biotechnol · 2020

basic_science · Level V

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Abstract

Bioelectronics for modulating the nervous system have shown promise in treating neurological diseases<sup>1-3</sup>. However, their fixed dimensions cannot accommodate rapid tissue growth<sup>4,5</sup> and may impair development<sup>6</sup>. For infants, children and adolescents, once implanted devices are outgrown, additional surgeries are often needed for device replacement, leading to repeated interventions and complications<sup>6-8</sup>. Here, we address this limitation with morphing electronics, which adapt to in vivo nerve tissue growth with minimal mechanical constraint. We design and fabricate multilayered morphing electronics, consisting of viscoplastic electrodes and a strain sensor that eliminate the stress at the interface between the electronics and growing tissue. The ability of morphing electronics to self-heal during implantation surgery allows a reconfigurable and seamless neural interface. During the fastest growth period in rats, morphing electronics caused minimal damage to the rat nerve, which grows 2.4-fold in diameter, and allowed chronic electrical stimulation and monitoring for 2 months without disruption of functional behavior. Morphing electronics offers a path toward growth-adaptive pediatric electronic medicine.

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