Sensory input drives rapid homeostatic scaling of the axon initial segment in mouse barrel cortex

Publication date

2021-01-04

Authors

Jamann, Nora
Dannehl, Dominik
Lehmann, Nadja
Wagener, Robin
Thielemann, Corinna
Schultz, Christian
Staiger, Jochen
Kole, MaartenORCID 0000-0002-3883-5682ISNI 0000000017410971
Engelhardt, Maren

Editors

Advisors

Supervisors

Document Type

Article
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cc_by

Abstract

The axon initial segment (AIS) is a critical microdomain for action potential initiation and implicated in the regulation of neuronal excitability during activity-dependent plasticity. While structural AIS plasticity has been suggested to fine-tune neuronal activity when network states change, whether it acts in vivo as a homeostatic regulatory mechanism in behaviorally relevant contexts remains poorly understood. Using the mouse whisker-to-barrel pathway as a model system in combination with immunofluorescence, confocal analysis and electrophysiological recordings, we observed bidirectional AIS plasticity in cortical pyramidal neurons. Furthermore, we find that structural and functional AIS remodeling occurs in distinct temporal domains: Long-term sensory deprivation elicits an AIS length increase, accompanied with an increase in neuronal excitability, while sensory enrichment results in a rapid AIS shortening, accompanied by a decrease in action potential generation. Our findings highlight a central role of the AIS in the homeostatic regulation of neuronal input-output relations.

Keywords

General Chemistry, General Biochemistry,Genetics and Molecular Biology, General Physics and Astronomy

Citation

Jamann, N, Dannehl, D, Lehmann, N, Wagener, R, Thielemann, C, Schultz, C, Staiger, J, Kole, M H P & Engelhardt, M 2021, 'Sensory input drives rapid homeostatic scaling of the axon initial segment in mouse barrel cortex', Nature Communications, vol. 12, no. 1, 23, pp. 1-14. https://doi.org/10.1038/s41467-020-20232-x