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Direct Observation of Compartment-Specific Localization and Dynamics of Voltage-Gated Sodium Channels.

Publication ,  Journal Article
Liu, H; Wang, H-G; Pitt, G; Liu, Z
Published in: J Neurosci
July 13, 2022

Brain enriched voltage-gated sodium channel (VGSC) Nav1.2 and Nav1.6 are critical for electrical signaling in the CNS. Previous studies have extensively characterized cell-type-specific expression and electrophysiological properties of these two VGSCs and how their differences contribute to fine-tuning of neuronal excitability. However, because of a lack of reliable labeling and imaging methods, the subcellular localization and dynamics of these homologous Nav1.2 and Nav1.6 channels remain understudied. To overcome this challenge, we combined genome editing, super-resolution, and live-cell single-molecule imaging to probe subcellular composition, relative abundances, and trafficking dynamics of Nav1.2 and Nav1.6 in cultured mouse and rat neurons and in male and female mouse brain. We discovered a previously uncharacterized trafficking pathway that targets Nav1.2 to the distal axon of unmyelinated neurons. This pathway uses distinct signals residing in the intracellular loop 1 between transmembrane domain I and II to suppress the retention of Nav1.2 in the axon initial segment and facilitate its membrane loading at the distal axon. As mouse pyramidal neurons undergo myelination, Nav1.2 is gradually excluded from the distal axon as Nav1.6 becomes the dominant VGSC in the axon initial segment and nodes of Ranvier. In addition, we revealed exquisite developmental regulation of Nav1.2 and Nav1.6 localizations in the axon initial segment and dendrites, clarifying the molecular identity of sodium channels in these subcellular compartments. Together, these results unveiled compartment-specific localizations and trafficking mechanisms for VGSCs, which could be regulated separately to modulate membrane excitability in the brain.SIGNIFICANCE STATEMENT Direct observation of endogenous voltage-gated sodium channels reveals a previously uncharacterized distal axon targeting mechanism and the molecular identity of sodium channels in distinct subcellular compartments.

Duke Scholars

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Published In

J Neurosci

DOI

EISSN

1529-2401

Publication Date

July 13, 2022

Volume

42

Issue

28

Start / End Page

5482 / 5498

Location

United States

Related Subject Headings

  • Neurology & Neurosurgery
  • 3209 Neurosciences
  • 17 Psychology and Cognitive Sciences
  • 11 Medical and Health Sciences
 

Citation

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Liu, H., Wang, H.-G., Pitt, G., & Liu, Z. (2022). Direct Observation of Compartment-Specific Localization and Dynamics of Voltage-Gated Sodium Channels. J Neurosci, 42(28), 5482–5498. https://doi.org/10.1523/JNEUROSCI.0086-22.2022
Liu, Hui, Hong-Gang Wang, Geoffrey Pitt, and Zhe Liu. “Direct Observation of Compartment-Specific Localization and Dynamics of Voltage-Gated Sodium Channels.J Neurosci 42, no. 28 (July 13, 2022): 5482–98. https://doi.org/10.1523/JNEUROSCI.0086-22.2022.
Liu H, Wang H-G, Pitt G, Liu Z. Direct Observation of Compartment-Specific Localization and Dynamics of Voltage-Gated Sodium Channels. J Neurosci. 2022 Jul 13;42(28):5482–98.
Liu, Hui, et al. “Direct Observation of Compartment-Specific Localization and Dynamics of Voltage-Gated Sodium Channels.J Neurosci, vol. 42, no. 28, July 2022, pp. 5482–98. Pubmed, doi:10.1523/JNEUROSCI.0086-22.2022.
Liu H, Wang H-G, Pitt G, Liu Z. Direct Observation of Compartment-Specific Localization and Dynamics of Voltage-Gated Sodium Channels. J Neurosci. 2022 Jul 13;42(28):5482–5498.

Published In

J Neurosci

DOI

EISSN

1529-2401

Publication Date

July 13, 2022

Volume

42

Issue

28

Start / End Page

5482 / 5498

Location

United States

Related Subject Headings

  • Neurology & Neurosurgery
  • 3209 Neurosciences
  • 17 Psychology and Cognitive Sciences
  • 11 Medical and Health Sciences