Voltage-gated sodium (Nav) channels are pivotal for cellular signaling, and mutations in Nav channels can lead to excitability disorders in cardiac, muscular, and neural tissues. A major cluster of pathological mutations localizes in the voltage-sensing domains (VSDs), resulting in either gain-of-function, loss-of-function effects, or both. However, the mechanism behind this functional diversity of mutations at equivalent positions remains elusive. Through hotspot analysis, we identified three gating charges (R1, R2, and R3) as major mutational hotspots in VSDs. The same amino acid substitutions at equivalent gating-charge positions in VSDI and VSDII of the cardiac sodium channel Nav1.5 show differential gating property impacts in electrophysiology measurements. We conducted molecular dynamics (MD) simulations on wild-type channels and six mutants to elucidate the structural basis of their differential impacts. Our 120-µs MD simulations with applied external electric fields captured VSD state transitions and revealed the differential structural dynamics between equivalent R-to-Q mutants. Notably, we observed transient leaky conformations in some mutants during structural transitions, offering a detailed structural explanation for gating-pore currents. Our salt-bridge network analysis uncovered VSD-specific and state-dependent interactions among gating charges, countercharges, and lipids. This detailed analysis revealed how mutations disrupt critical electrostatic interactions, thereby altering VSD permeability and modulating gating properties. By demonstrating the crucial importance of considering the specific structural context of each mutation, our study advances our understanding of structure–function relationships in Nav channels. Our work establishes a robust framework for future investigations into the molecular basis of ion channel–related disorders.
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Voltage-Gated Na Channels|
January 17 2025
The differential impacts of equivalent gating-charge mutations in voltage-gated sodium channels
Eslam Elhanafy
,
Eslam Elhanafy
(Conceptualization, Data curation, Formal analysis, Investigation, Methodology, Software, Validation, Visualization, Writing - original draft, Writing - review & editing)
1Department of Biomolecular Sciences,
School of Pharmacy, University of Mississippi
, Oxford, MS, USA
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Amin Akbari Ahangar
,
Amin Akbari Ahangar
(Data curation, Formal analysis, Methodology, Validation, Visualization, Writing - review & editing)
1Department of Biomolecular Sciences,
School of Pharmacy, University of Mississippi
, Oxford, MS, USA
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Rebecca Roth
,
Rebecca Roth
(Data curation, Formal analysis, Investigation, Visualization, Writing - review & editing)
2Department of Physiology and Biophysics,
University of Colorado Anschutz Medical Campus
, Aurora, CO, USA
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Tamer M. Gamal El-Din
,
Tamer M. Gamal El-Din
(Conceptualization, Methodology, Project administration, Supervision, Writing - review & editing)
3Department of Pharmacology,
University of Washington
, Seattle, WA, USA
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John R. Bankston
,
John R. Bankston
(Formal analysis, Funding acquisition, Project administration, Resources, Supervision, Visualization, Writing - review & editing)
2Department of Physiology and Biophysics,
University of Colorado Anschutz Medical Campus
, Aurora, CO, USA
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Jing Li
(Conceptualization, Formal analysis, Funding acquisition, Investigation, Methodology, Project administration, Resources, Supervision, Validation, Writing - original draft, Writing - review & editing)
1Department of Biomolecular Sciences,
School of Pharmacy, University of Mississippi
, Oxford, MS, USA
Correspondence to Jing Li: [email protected]
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Eslam Elhanafy
Conceptualization, Data curation, Formal analysis, Investigation, Methodology, Software, Validation, Visualization, Writing - original draft, Writing - review & editing
1Department of Biomolecular Sciences,
School of Pharmacy, University of Mississippi
, Oxford, MS, USA
Amin Akbari Ahangar
Data curation, Formal analysis, Methodology, Validation, Visualization, Writing - review & editing
1Department of Biomolecular Sciences,
School of Pharmacy, University of Mississippi
, Oxford, MS, USA
Rebecca Roth
Data curation, Formal analysis, Investigation, Visualization, Writing - review & editing
2Department of Physiology and Biophysics,
University of Colorado Anschutz Medical Campus
, Aurora, CO, USA
Tamer M. Gamal El-Din
Conceptualization, Methodology, Project administration, Supervision, Writing - review & editing
3Department of Pharmacology,
University of Washington
, Seattle, WA, USA
John R. Bankston
Formal analysis, Funding acquisition, Project administration, Resources, Supervision, Visualization, Writing - review & editing
2Department of Physiology and Biophysics,
University of Colorado Anschutz Medical Campus
, Aurora, CO, USA
Jing Li
Conceptualization, Formal analysis, Funding acquisition, Investigation, Methodology, Project administration, Resources, Supervision, Validation, Writing - original draft, Writing - review & editing
1Department of Biomolecular Sciences,
School of Pharmacy, University of Mississippi
, Oxford, MS, USA
Correspondence to Jing Li: [email protected]
Disclosures: The authors declare no competing interests exist.
This work is part of a special issue on Voltage-Gated Sodium (Nav) Channels.
Received:
September 08 2024
Revision Received:
November 27 2024
Accepted:
December 25 2024
Online ISSN: 1540-7748
Print ISSN: 0022-1295
Funding
Funder(s):
National Center for Multiscale Modeling of Biological Systems
- Award Id(s): BIO210015,MCB200085P
Funder(s):
National Institutes of Health
- Award Id(s): P41GM103712-1
Funder(s):
Texas Advanced Computing Center
- Award Id(s): MCB21012
Funder(s):
National Institute of General Medical Sciences
- Award Id(s): P20GM130460
Funder(s):
University of Mississippi
- Award Id(s): SB3002 IDS RSG-03
© 2025 Elhanafy et al.
2025
Elhanafy et al.
This article is distributed under the terms as described at https://rupress.org/pages/terms102024/.
J Gen Physiol (2025) 157 (2): e202413669.
Article history
Received:
September 08 2024
Revision Received:
November 27 2024
Accepted:
December 25 2024
Connected Content
Citation
Eslam Elhanafy, Amin Akbari Ahangar, Rebecca Roth, Tamer M. Gamal El-Din, John R. Bankston, Jing Li; The differential impacts of equivalent gating-charge mutations in voltage-gated sodium channels. J Gen Physiol 3 March 2025; 157 (2): e202413669. doi: https://doi.org/10.1085/jgp.202413669
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