RYR1 Sequence Variants in Myopathies: Expression and Functional Studies in Two Families

Alberto Zullo1,2, Giuseppa Perrotta1, Rossana D'Angelo1

  • 1CEINGE-Advanced Biotechnologies, Via Gaetano Salvatore 486, 80145 Naples, Italy.

Insights

Researchers identified four RYR1 gene variants in Italian families with skeletal muscle disorders. Functional studies in patient cells revealed how these RYR1 variants impact calcium release and storage, offering insights into disease mechanisms.

Area of Science:

  • Genetics and Molecular Biology
  • Cellular Physiology
  • Neuromuscular Disorders

Background:

  • The skeletal muscle ryanodine receptor (RyR1) and Cav1.1 are key to muscle excitation-contraction coupling.
  • RYR1 gene variants are associated with skeletal myopathies like malignant hyperthermia and central core disease.
  • These disorders present with varied onset and clinical/histopathological features.

Purpose of the Study:

  • To identify and functionally characterize RYR1 variants in Italian families with skeletal muscle disorders.
  • To investigate the impact of identified variants on RyR1 channel function and calcium handling in patient-derived cells.

Main Methods:

  • Genetic analysis to identify RYR1 variants in affected families.
  • Functional characterization of variants using patient-specific lymphoblastoid cells.
  • Assessment of calcium (Ca2+) release and S/ER Ca2+ stores using RyR1 agonists and thapsigargin.

Main Results:

  • Four RYR1 variants were identified: c.4003C>T (p.R1335C), c.7035C>A (p.S2345R), c.9293G>T (p.S3098I), and a 30-nucleotide insertion (p.F4924_V4925insRQGVALLPFF).
  • The p.R1335C variant showed no expression, while the insertion variant had low expression in patient cells.
  • The p.S2345R variant led to S/ER Ca2+ store depletion.
  • Compound heterozygosity for p.S3098I and the insertion variant increased RyR1-dependent Ca2+ release.

Conclusions:

  • Disease-causing RYR1 variants were detected and functionally validated in patient-derived lymphoblastoid cells.
  • The study elucidates specific mechanisms by which RYR1 variants contribute to skeletal myopathies.
  • This research contributes to understanding RYR1-related neuromuscular disorders.

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