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.
Abstract:
RYR1 is the most commonly mutated gene associated with congenital myopathies, a group of early-onset neuromuscular conditions of variable severity. The functional effects of a number of dominant RYR1 mutations have been established; however, for recessive mutations, these effects may depend on multiple factors, such as the formation of a hypomorphic allele, or on whether they are homozygous or compound heterozygous. Here, we functionally characterize a new transgenic mouse model knocked-in for mutations identified in a severely affected child born preterm and presenting limited limb movement. The child carried the homozygous c.14928C>G RYR1 mutation, resulting in the p.F4976L substitution. In vivo and ex vivo assays revealed that homozygous mice fatigued sooner and their muscles generated significantly less force compared with their WT or heterozygous littermates. Electron microscopy, biochemical, and physiological analyses showed that muscles from RyR1 p.F4976L homozygous mice have the following properties: (1) contain fewer calcium release units and show areas of myofibrillar degeneration, (2) contain less RyR1 protein, (3) fibers show smaller electrically evoked calcium transients, and (4) their SR has smaller calcium stores. In addition, single-channel recordings indicate that RyR1 p.F4976L exhibits higher Po in the presence of 100 μM [Ca2+]. Our mouse model partly recapitulates the clinical picture of the homozygous human patient and provides significant insight into the functional impact of this mutation. These results will help understand the pathology of patients with similar RYR1 mutations.
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.


