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LRRC37B is a human modifier of voltage-gated sodium channels and axon excitability in cortical neurons

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posted on 2024-02-22, 03:22 authored by B Libé-Philippot, A Lejeune, K Wierda, N Louros, E Erkol, I Vlaeminck, S Beckers, V Gaspariunaite, A Bilheu, K Konstantoulea, H Nyitrai, M De Vleeschouwer, KM Vennekens, N Vidal, TW Bird, DC Soto, T Jaspers, M Dewilde, MY Dennis, F Rousseau, Davide ComolettiDavide Comoletti, J Schymkowitz, T Theys, J de Wit, P Vanderhaeghen
The enhanced cognitive abilities characterizing the human species result from specialized features of neurons and circuits. Here, we report that the hominid-specific gene LRRC37B encodes a receptor expressed in human cortical pyramidal neurons (CPNs) and selectively localized to the axon initial segment (AIS), the subcellular compartment triggering action potentials. Ectopic expression of LRRC37B in mouse CPNs in vivo leads to reduced intrinsic excitability, a distinctive feature of some classes of human CPNs. Molecularly, LRRC37B binds to the secreted ligand FGF13A and to the voltage-gated sodium channel (Nav) β-subunit SCN1B. LRRC37B concentrates inhibitory effects of FGF13A on Nav channel function, thereby reducing excitability, specifically at the AIS level. Electrophysiological recordings in adult human cortical slices reveal lower neuronal excitability in human CPNs expressing LRRC37B. LRRC37B thus acts as a species-specific modifier of human neuron excitability, linking human genome and cell evolution, with important implications for human brain function and diseases.

Funding

Collaborative Research: Structure and function of Reelin in brain development

Directorate for Biological Sciences

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History

Preferred citation

Libé-Philippot, B., Lejeune, A., Wierda, K., Louros, N., Erkol, E., Vlaeminck, I., Beckers, S., Gaspariunaite, V., Bilheu, A., Konstantoulea, K., Nyitrai, H., De Vleeschouwer, M., Vennekens, K. M., Vidal, N., Bird, T. W., Soto, D. C., Jaspers, T., Dewilde, M., Dennis, M. Y.,... Vanderhaeghen, P. (2023). LRRC37B is a human modifier of voltage-gated sodium channels and axon excitability in cortical neurons. Cell, 186(26), 5766-5783.e25. https://doi.org/10.1016/j.cell.2023.11.028

Journal title

Cell

Volume

186

Issue

26

Publication date

2023-12-21

Pagination

5766-5783.e25

Publisher

Elsevier BV

Publication status

Published

ISSN

0092-8674

eISSN

1097-4172

Language

en