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Long-term editing of brain circuits using an engineered electrical synapse.

Journal articles  - Journal Article
Ransey, E; Thomas, GE; Wisdom, EM; Almoril-Porras, A; Bowman, R; Adamson, E; Walder-Christensen, KK; White, JA; Hughes, DN; Schwennesen, H ...
Published in: Nature
July 2026

Electrical signalling across distinct populations of brain cells underpins cognitive and emotional function. However, approaches that selectively regulate electrical signalling between two cellular components of a mammalian neural circuit remain sparse. Here we engineered an electrical synapse composed of two connexin proteins1 found in Morone americana (white perch fish)-connexin 34.7 and connexin 35-to accomplish mammalian circuit modulation. By exploiting protein mutagenesis, devising a new in vitro system for assaying connexin hemichannel docking, and performing computational modelling of hemichannel interactions, we uncovered a structural motif that contributes to electrical synapse formation. Targeting this motif, we designed connexin 34.7 and connexin 35 hemichannels that dock with each other to form an electrical synapse but not with other major connexins expressed in the mammalian central nervous system. We validated this electrical synapse in vivo using worms (Caenorhabditis elegans) and mice (Mus musculus). We demonstrate that it can strengthen communication across neural circuits composed of pairs of distinct cell types and modify behaviour accordingly. Thus, we establish 'long-term integration of circuits using connexins' (LinCx) for precision circuit editing in mammals.

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Published In

Nature

DOI

EISSN

1476-4687

Publication Date

July 2026

Volume

655

Issue

8123

Start / End Page

703 / 715

Location

England

Related Subject Headings

  • Time Factors
  • Models, Molecular
  • Mice
  • General Science & Technology
  • Electrical Synapses
  • Connexins
  • Caenorhabditis elegans
  • Brain
  • Animals
  • Amino Acid Motifs
 

Citation

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Ransey, E., Thomas, G. E., Wisdom, E. M., Almoril-Porras, A., Bowman, R., Adamson, E., … Dzirasa, K. (2026). Long-term editing of brain circuits using an engineered electrical synapse. Nature, 655(8123), 703–715. https://doi.org/10.1038/s41586-026-10501-y
Ransey, Elizabeth, Gwenaëlle E. Thomas, Elias M. Wisdom, Agustin Almoril-Porras, Ryan Bowman, Elise Adamson, Kathryn K. Walder-Christensen, et al. “Long-term editing of brain circuits using an engineered electrical synapse.Nature 655, no. 8123 (July 2026): 703–15. https://doi.org/10.1038/s41586-026-10501-y.
Ransey E, Thomas GE, Wisdom EM, Almoril-Porras A, Bowman R, Adamson E, et al. Long-term editing of brain circuits using an engineered electrical synapse. Nature. 2026 Jul;655(8123):703–15.
Ransey, Elizabeth, et al. “Long-term editing of brain circuits using an engineered electrical synapse.Nature, vol. 655, no. 8123, July 2026, pp. 703–15. Pubmed, doi:10.1038/s41586-026-10501-y.
Ransey E, Thomas GE, Wisdom EM, Almoril-Porras A, Bowman R, Adamson E, Walder-Christensen KK, White JA, Hughes DN, Schwennesen H, Ferguson C, Tye KM, Mague SD, Niu L, Wang Z-W, Colón-Ramos D, Hultman R, Bursac N, Dzirasa K. Long-term editing of brain circuits using an engineered electrical synapse. Nature. 2026 Jul;655(8123):703–715.
Journal cover image

Published In

Nature

DOI

EISSN

1476-4687

Publication Date

July 2026

Volume

655

Issue

8123

Start / End Page

703 / 715

Location

England

Related Subject Headings

  • Time Factors
  • Models, Molecular
  • Mice
  • General Science & Technology
  • Electrical Synapses
  • Connexins
  • Caenorhabditis elegans
  • Brain
  • Animals
  • Amino Acid Motifs