4.8 Article

Evolutionarily conserved intracellular gate of voltage-dependent sodium channels

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NATURE COMMUNICATIONS
卷 5, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/ncomms4420

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资金

  1. NIH [GM084140]
  2. Shaw Scientist Award
  3. American Heart Association [12POST9440021]
  4. Translational Cardiovascular predoctoral training grant [T32-HL07936]
  5. Molecular and Cellular Pharmacology training grant [T32GM008668]
  6. National Institutes of Health (NIH), National Institute of Neurological Disorders and Stroke

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Members of the voltage-gated ion channel superfamily (VGIC) regulate ion flux and generate electrical signals in excitable cells by opening and closing pore gates. The location of the gate in voltage-gated sodium channels, a founding member of this superfamily, remains unresolved. Here we explore the chemical modification rates of introduced cysteines along the S6 helix of domain IV in an inactivation-removed background. We find that state-dependent accessibility is demarcated by an S6 hydrophobic residue; substituted cysteines above this site are not modified by charged thiol reagents when the channel is closed. These accessibilities are consistent with those inferred from open-and closed-state structures of prokaryotic sodium channels. Our findings suggest that an intracellular gate composed of a ring of hydrophobic residues is not only responsible for regulating access to the pore of sodium channels, but is also a conserved feature within canonical members of the VGIC superfamily.

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