Single channel properties of heterotetrameric mutant RyR1 ion channels linked to core myopathies

Le Xu1, Ying Wang, Naohiro Yamaguchi

  • 1Department of Biochemistry and Biophysics, University of North Carolina, Chapel Hill, NC 27599-7260, USA.

Insights

Mutations in ryanodine receptor 1 (RyR1) channels linked to core myopathies abolish or reduce calcium release essential for muscle contraction. However, some RyR1 channels can still function when co-expressed with healthy RyR1, releasing calcium.

Area of Science:

  • Molecular Biology
  • Biophysics
  • Cellular Physiology

Background:

  • Skeletal muscle excitation-contraction coupling relies on ryanodine receptor 1 (RyR1) channels for calcium release.
  • Mutations in RyR1 are associated with debilitating muscle diseases like Central Core Disease and Multiple Minicore Disease.

Purpose of the Study:

  • To investigate the functional consequences of specific RyR1 mutations linked to core myopathies.
  • To determine how these mutations affect RyR1 channel activity and calcium permeation.

Main Methods:

  • Expression of wild-type and mutant RyR1 channels in human embryonic kidney 293 cells.
  • Incorporation of RyR1 channels into lipid bilayers for functional analysis.
  • Electrophysiological recordings to assess ion permeation and channel activity.

Main Results:

  • RyR1 mutants (G4898E, G4898R, ΔV4926/I4927, R110W/L486V) exhibited negligible calcium permeation and lost calcium-dependent activity.
  • Mutant channels retained reduced potassium (K+) conductances.
  • Co-expression of wild-type and mutant RyR1 subunits formed heterotetrameric channels with intermediate calcium selectivity.
  • The number of wild-type subunits required for functional heterotetrameric channels varied among mutants.

Conclusions:

  • Homozygous RyR1 mutations associated with core myopathies severely impair or abolish calcium release during muscle excitation-contraction coupling.
  • In heterozygous individuals, a significant proportion of RyR1 channels can still release calcium, potentially mitigating disease severity.

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