Characterization of a novel Nav1.5 channel mutation, A551T, associated with Brugada syndrome

J Biomed Sci. 2009 Aug 25;16(1):76. doi: 10.1186/1423-0127-16-76.

Abstract

Brugada syndrome is a life-threatening, inherited arrhythmia disorder associated with autosomal dominant mutations in SCN5A, the gene encoding the human cardiac Na+ channel alpha subunit (Nav1.5). Here, we characterized the biophysical properties of a novel Brugada syndrome-associated Nav1.5 mutation, A551T, identified in a proband who was successfully resuscitated from an episode of ventricular fibrillation with sudden collapse. Whole-cell currents through wild-type (WT) Nav1.5 and mutant (A551T) channels were recorded and compared in the human embryonic kidney cell line HEK293T transfected with SCN5A cDNA and SCN1B cDNA, using the patch-clamp technique. Current density was decreased in the A551T mutant compared to the WT. In addition, the A551T mutation reduced Nav1.5 activity by promoting entry of the channel into fast inactivation from the closed state, thereby shifting the steady-state inactivation curve by -5 mV. Furthermore, when evaluated at -90 mV, the resting membrane potential, but not at the conventionally used -120 mV, both the percentage, and rate, of channel recovery from inactivation were reduced in the mutant. These results suggest that the DI-DII linker may be involved in the stability of inactivation gating process. This study supports the notion that a reduction in Nav1.5 channel function is involved in the pathogenesis of Brugada syndrome. The structural-functional study of the Nav1.5 channel advances our understanding of its pathophysiolgocial function.

Publication types

  • Case Reports
  • Research Support, Non-U.S. Gov't

MeSH terms

  • Amino Acid Substitution
  • Brugada Syndrome / genetics*
  • Cell Line, Transformed
  • Humans
  • Ion Channel Gating / genetics
  • Ion Channel Gating / physiology
  • Male
  • Membrane Potentials
  • Middle Aged
  • Muscle Proteins / chemistry
  • Muscle Proteins / genetics
  • Muscle Proteins / physiology*
  • Mutagenesis, Site-Directed
  • Mutation, Missense*
  • NAV1.5 Voltage-Gated Sodium Channel
  • Patch-Clamp Techniques
  • Phosphorylation
  • Point Mutation*
  • Protein Processing, Post-Translational
  • Sodium / metabolism
  • Sodium Channels / chemistry
  • Sodium Channels / genetics
  • Sodium Channels / physiology*
  • Structure-Activity Relationship

Substances

  • Muscle Proteins
  • NAV1.5 Voltage-Gated Sodium Channel
  • SCN5A protein, human
  • Sodium Channels
  • Sodium