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Updated: Jul 8, 2026

Functional Characterization of Endogenously Expressed Human RYR1 Variants
Published on: June 9, 2021
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.
Abstract:
Skeletal muscle excitation-contraction coupling involves activation of homotetrameric ryanodine receptor ion channels (RyR1s), resulting in the rapid release of Ca(2+) from the sarcoplasmic reticulum. Previous work has shown that Ca(2+) release is impaired by mutations in RyR1 linked to Central Core Disease and Multiple Minicore Disease. We studied the consequences of these mutations on RyR1 function, following their expression in human embryonic kidney 293 cells and incorporation in lipid bilayers. RyR1-G4898E, -G4898R, and -DeltaV4926/I4927 mutants in the C-terminal pore region of RyR1 and N-terminal RyR1-R110W/L486V mutant all showed negligible Ca(2+) permeation and loss of Ca(2+)-dependent channel activity but maintained reduced K(+) conductances. Co-expression of wild type and mutant RyR1s resulted in Ca(2+)-dependent channel activities that exhibited intermediate Ca(2+) selectivities compared with K(+), which suggested the presence of tetrameric RyR1 complexes composed of wild type and mutant subunits. The number of wild-type subunits to maintain a functional heterotetrameric channel differed among the four RyR1 mutants. The results indicate that homozygous RyR1 mutations associated with core myopathies abolish or greatly reduce sarcoplasmic reticulum Ca(2+) release during excitation-contraction coupling. They further suggest that in individuals, expressing wild type and mutant alleles, a substantial portion of RyR1 channels is able to release Ca(2+) from sarcoplasmic reticulum.
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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