Structural and functional evidence for ephaptic control of Purkinje cell spike timing by networks of molecular layer interneurons.
Publication
, Journal Article
Norton, A; Lackey, EP; Öztürk, S; Gaynor, CS; Ediger, S; Lee, W-CA; Hull, CA; Regehr, WG
Published in: bioRxiv
December 29, 2025
Axon collaterals of type 1 molecular layer interneurons (MLI1s) contribute to pinceaux that engulf the initial segments of Purkinje cell (PC) axons and generate extracellular signals that ephaptically inhibit PCs. Here we show that a remarkably large number of MLI1s (∼50) contribute to each pinceau, and that this allows networks of synchronously firing MLI1s to use ephaptic signals to control the precise timing of PC firing in vivo .
Duke Scholars
Published In
bioRxiv
DOI
EISSN
2692-8205
Publication Date
December 29, 2025
Location
United States
Citation
APA
Chicago
ICMJE
MLA
NLM
Norton, A., Lackey, E. P., Öztürk, S., Gaynor, C. S., Ediger, S., Lee, W.-C., … Regehr, W. G. (2025). Structural and functional evidence for ephaptic control of Purkinje cell spike timing by networks of molecular layer interneurons. BioRxiv. https://doi.org/10.64898/2025.12.28.696768
Norton, Aliya, Elizabeth P. Lackey, Sevgi Öztürk, Cole S. Gaynor, Sean Ediger, Wei-Chung Allen Lee, Court A. Hull, and Wade G. Regehr. “Structural and functional evidence for ephaptic control of Purkinje cell spike timing by networks of molecular layer interneurons.” BioRxiv, December 29, 2025. https://doi.org/10.64898/2025.12.28.696768.
Norton A, Lackey EP, Öztürk S, Gaynor CS, Ediger S, Lee W-CA, et al. Structural and functional evidence for ephaptic control of Purkinje cell spike timing by networks of molecular layer interneurons. bioRxiv. 2025 Dec 29;
Norton, Aliya, et al. “Structural and functional evidence for ephaptic control of Purkinje cell spike timing by networks of molecular layer interneurons.” BioRxiv, Dec. 2025. Pubmed, doi:10.64898/2025.12.28.696768.
Norton A, Lackey EP, Öztürk S, Gaynor CS, Ediger S, Lee W-CA, Hull CA, Regehr WG. Structural and functional evidence for ephaptic control of Purkinje cell spike timing by networks of molecular layer interneurons. bioRxiv. 2025 Dec 29;
Published In
bioRxiv
DOI
EISSN
2692-8205
Publication Date
December 29, 2025
Location
United States