Skip to main content

Multifunctional microelectronic fibers enable wireless modulation of gut and brain neural circuits.

Publication ,  Journal Article
Sahasrabudhe, A; Rupprecht, LE; Orguc, S; Khudiyev, T; Tanaka, T; Sands, J; Zhu, W; Tabet, A; Manthey, M; Allen, H; Loke, G; Antonini, M-J ...
Published in: Nat Biotechnol
June 2024

Progress in understanding brain-viscera interoceptive signaling is hindered by a dearth of implantable devices suitable for probing both brain and peripheral organ neurophysiology during behavior. Here we describe multifunctional neural interfaces that combine the scalability and mechanical versatility of thermally drawn polymer-based fibers with the sophistication of microelectronic chips for organs as diverse as the brain and the gut. Our approach uses meters-long continuous fibers that can integrate light sources, electrodes, thermal sensors and microfluidic channels in a miniature footprint. Paired with custom-fabricated control modules, the fibers wirelessly deliver light for optogenetics and transfer data for physiological recording. We validate this technology by modulating the mesolimbic reward pathway in the mouse brain. We then apply the fibers in the anatomically challenging intestinal lumen and demonstrate wireless control of sensory epithelial cells that guide feeding behaviors. Finally, we show that optogenetic stimulation of vagal afferents from the intestinal lumen is sufficient to evoke a reward phenotype in untethered mice.

Duke Scholars

Published In

Nat Biotechnol

DOI

EISSN

1546-1696

Publication Date

June 2024

Volume

42

Issue

6

Start / End Page

892 / 904

Location

United States

Related Subject Headings

  • Wireless Technology
  • Optogenetics
  • Mice
  • Brain
  • Animals
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Sahasrabudhe, A., Rupprecht, L. E., Orguc, S., Khudiyev, T., Tanaka, T., Sands, J., … Anikeeva, P. (2024). Multifunctional microelectronic fibers enable wireless modulation of gut and brain neural circuits. Nat Biotechnol, 42(6), 892–904. https://doi.org/10.1038/s41587-023-01833-5
Sahasrabudhe, Atharva, Laura E. Rupprecht, Sirma Orguc, Tural Khudiyev, Tomo Tanaka, Joanna Sands, Weikun Zhu, et al. “Multifunctional microelectronic fibers enable wireless modulation of gut and brain neural circuits.Nat Biotechnol 42, no. 6 (June 2024): 892–904. https://doi.org/10.1038/s41587-023-01833-5.
Sahasrabudhe A, Rupprecht LE, Orguc S, Khudiyev T, Tanaka T, Sands J, et al. Multifunctional microelectronic fibers enable wireless modulation of gut and brain neural circuits. Nat Biotechnol. 2024 Jun;42(6):892–904.
Sahasrabudhe, Atharva, et al. “Multifunctional microelectronic fibers enable wireless modulation of gut and brain neural circuits.Nat Biotechnol, vol. 42, no. 6, June 2024, pp. 892–904. Pubmed, doi:10.1038/s41587-023-01833-5.
Sahasrabudhe A, Rupprecht LE, Orguc S, Khudiyev T, Tanaka T, Sands J, Zhu W, Tabet A, Manthey M, Allen H, Loke G, Antonini M-J, Rosenfeld D, Park J, Garwood IC, Yan W, Niroui F, Fink Y, Chandrakasan A, Bohórquez DV, Anikeeva P. Multifunctional microelectronic fibers enable wireless modulation of gut and brain neural circuits. Nat Biotechnol. 2024 Jun;42(6):892–904.

Published In

Nat Biotechnol

DOI

EISSN

1546-1696

Publication Date

June 2024

Volume

42

Issue

6

Start / End Page

892 / 904

Location

United States

Related Subject Headings

  • Wireless Technology
  • Optogenetics
  • Mice
  • Brain
  • Animals