A novel, patient-derived RyR1 mutation impairs muscle function and calcium homeostasis in mice

Sofia Benucci1, Alexis Ruiz1, Martina Franchini1

  • 1Departments of Biomedicine and Neurology, Basel University Hospital, Basel, Switzerland.

Insights

A new mouse model with a homozygous RYR1 mutation (p.F4976L) shows reduced muscle force and earlier fatigue, mirroring human congenital myopathies. This model aids understanding of RYR1-related neuromuscular disorders.

Area of Science:

  • Genetics and Molecular Biology
  • Neuromuscular Disorders
  • Physiology

Background:

  • Congenital myopathies are often linked to RYR1 gene mutations.
  • Recessive RYR1 mutations' effects are complex, depending on allele type and zygosity.
  • Understanding these mutations is crucial for diagnosing and treating early-onset neuromuscular conditions.

Purpose of the Study:

  • To functionally characterize a novel mouse model with a homozygous RYR1 mutation (p.F4976L).
  • To investigate the impact of this specific mutation on muscle function and structure.
  • To provide insights into the pathology of congenital myopathies caused by RYR1 mutations.

Main Methods:

  • Generated a knock-in mouse model for the human RYR1 c.14928C>G mutation (p.F4976L).
  • Conducted in vivo and ex vivo functional assays (force, fatigue).
  • Performed electron microscopy, biochemical, and physiological analyses, including calcium transient and single-channel recordings.

Main Results:

  • Homozygous mice exhibited significantly reduced muscle force and earlier fatigue compared to controls.
  • Muscles showed fewer calcium release units, myofibrillar degeneration, and reduced RyR1 protein.
  • Fibers displayed smaller electrically evoked calcium transients and SR stores; RyR1 p.F4976L had higher channel open probability.

Conclusions:

  • The RYR1 p.F4976L homozygous mouse model partially replicates the human patient's phenotype.
  • This model offers valuable insights into the functional consequences of homozygous RYR1 mutations.
  • Findings contribute to understanding the pathophysiology of RYR1-related congenital myopathies.