Single point mutations affect fatty acid block of human myocardial sodium channel alpha subunit Na+ channels

Proc Natl Acad Sci U S A. 2001 Mar 13;98(6):3606-11. doi: 10.1073/pnas.061003798. Epub 2001 Mar 6.

Abstract

Suppression of cardiac voltage-gated Na(+) currents is probably one of the important factors for the cardioprotective effects of the n-3 polyunsaturated fatty acids (PUFAs) against lethal arrhythmias. The alpha subunit of the human cardiac Na(+) channel (hH1(alpha)) and its mutants were expressed in human embryonic kidney (HEK293t) cells. The effects of single amino acid point mutations on fatty acid-induced inhibition of the hH1(alpha) Na(+) current (I(Na)) were assessed. Eicosapentaenoic acid (EPA, C20:5n-3) significantly reduced I(Na) in HEK293t cells expressing the wild type, Y1767K, and F1760K of hH1(alpha) Na(+) channels. The inhibition was voltage and concentration-dependent with a significant hyperpolarizing shift of the steady state of I(Na). In contrast, the mutant N406K was significantly less sensitive to the inhibitory effect of EPA. The values of the shift at 1, 5, and 10 microM EPA were significantly smaller for N406K than for the wild type. Coexpression of the beta(1) subunit and N406K further decreased the inhibitory effects of EPA on I(Na) in HEK293t cells. In addition, EPA produced a smaller hyperpolarizing shift of the V(1/2) of the steady-state inactivation in HEK293t cells coexpressing the beta(1) subunit and N406K. These results demonstrate that substitution of asparagine with lysine at the site of 406 in the domain-1-segment-6 region (D1-S6) significantly decreased the inhibitory effect of PUFAs on I(Na), and coexpression with beta(1) decreased this effect even more. Therefore, asparagine at the 406 site in hH1(alpha) may be important for the inhibition by the PUFAs of cardiac voltage-gated Na(+) currents, which play a significant role in the antiarrhythmic actions of PUFAs.

Publication types

  • Research Support, Non-U.S. Gov't
  • Research Support, U.S. Gov't, P.H.S.

MeSH terms

  • Animals
  • Cell Line, Transformed
  • Docosahexaenoic Acids / metabolism
  • Docosahexaenoic Acids / pharmacology
  • Fatty Acids / metabolism*
  • Fatty Acids / pharmacology
  • Gene Expression
  • Humans
  • Mutagenesis, Site-Directed
  • Myocardium / metabolism
  • Oleic Acids / metabolism
  • Oleic Acids / pharmacology
  • Oxidation-Reduction
  • Rats
  • Sodium Channels / genetics
  • Sodium Channels / metabolism*
  • Sodium Channels / physiology
  • Stearic Acids / metabolism
  • Stearic Acids / pharmacology

Substances

  • Fatty Acids
  • Oleic Acids
  • Sodium Channels
  • Stearic Acids
  • Docosahexaenoic Acids