Sodium channel endocytosis drives axon initial segment plasticity

Publication date

2023-09-15

Authors

Freal, AmélieISNI 0000000430677047
Jamann, Nora
Ten Bos, Jolijn
Jansen, Jacqueline
Petersen, Naomi
Ligthart, Thijmen
Hoogenraad, CasperISNI 0000000396512854
Kole, MaartenORCID 0000-0002-3883-5682ISNI 0000000017410971

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Advisors

Supervisors

Document Type

Article
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License

cc_by

Abstract

Activity-dependent plasticity of the axon initial segment (AIS) endows neurons with the ability to adapt action potential output to changes in network activity. Action potential initiation at the AIS highly depends on the clustering of voltage-gated sodium channels, but the molecular mechanisms regulating their plasticity remain largely unknown. Here, we developed genetic tools to label endogenous sodium channels and their scaffolding protein, to reveal their nanoscale organization and longitudinally image AIS plasticity in hippocampal neurons in slices and primary cultures. We find that N-methyl-d-aspartate receptor activation causes both long-term synaptic depression and rapid internalization of AIS sodium channels within minutes. The clathrin-mediated endocytosis of sodium channels at the distal AIS increases the threshold for action potential generation. These data reveal a fundamental mechanism for rapid activity-dependent AIS reorganization and suggests that plasticity of intrinsic excitability shares conserved features with synaptic plasticity.

Keywords

Action Potentials, Axon Initial Segment, Cluster Analysis, Endocytosis, Sodium Channels, General

Citation

Fréal, A, Jamann, N, Ten Bos, J, Jansen, J, Petersen, N, Ligthart, T, Hoogenraad, C C & Kole, M H P 2023, 'Sodium channel endocytosis drives axon initial segment plasticity', Science advances, vol. 9, no. 37, eadf3885, pp. 1-16. https://doi.org/10.1126/sciadv.adf3885