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Updated: Jan 11, 2026

Functional Characterization of Endogenously Expressed Human RYR1 Variants
Published on: June 9, 2021
Ca2+, ROS, IL-6, and p38 MAPK signaling loops underlying alterations in myotube formation induced by a severe MH/CCD
Maikel Valle-Clara1, Guillermo Avila1
1Departamento de Bioquímica, Cinvestav-IPN, Mexico City, Mexico.
Abstract:
Mutations in the gene encoding the skeletal muscle ryanodine receptor (RyR1) can result in muscle diseases, termed RyR1-related myopathies (RyR1-RM). Examples include malignant hyperthermia (MH), central core disease (CCD), and centronuclear myopathy (CNM). The muscles involved often have more (and mispositioned) nuclei than normal. A subset of the corresponding mutant proteins shows an overactive or leaky sarcoplasmic reticulum (SR) channel behavior that depletes the SR Ca2+ content and increases the level of cytosolic Ca2+. In addition, two remarkable effects of these RyR1 variants have been reported in cultured myogenic cells: enhanced expression of interleukin-6 (IL-6) and stimulation of myoblast fusion (myonuclei accretion). Here, we have investigated whether the latter effect is due to a possible IL-6-dependent autocrine loop. Toward this goal, we analyzed the impact of the overactive Y523S mutant compared with the wild-type RyR1 after expression in C2C12 cells. The results show that this mutation indeed drastically promotes myoblast fusion up to ∼300%. Moreover, this action depends on the sequential activation of SR Ca2+ release, store-operated Ca2+ channels, reactive oxygen species (ROS, cytosolic and mitochondrial), calpain, and calcineurin. In addition, a neutralizing antibody directed against IL-6 and a p38 inhibitor completely suppressed the stimulation of myoblast fusion. Furthermore, in RyR1-expressing cells, myotube formation was promoted by either exogenous IL-6 or conditioned medium obtained from the Y523S-expressing cells. These findings suggest an autocrine mechanism involving the interplay between Ca2+, ROS, IL-6, and p38 signaling pathways in controlling myonuclei density, which could be essential to explain the pathogenesis of RyR1-RM.NEW & NOTEWORTHY Overactive RyR1 mutant proteins are associated with muscle disease; interestingly, they increase the number of myonuclei when expressed in C2C12 cells. We discovered that this alteration depends on a Ca2+/ROS loop, which recruits calpain and calcineurin to stimulate the production of IL-6 and the subsequent autocrine activation of p38. Thus, disease-causing RyR1 mutations require an IL-6 autocrine system to alter myonuclear density. This novel mechanism could be critical to understanding the pathogenesis of congenital myopathies.
Insights
Mutations in skeletal muscle ryanodine receptor (RyR1) cause muscle diseases and increase myonuclei. This study reveals a Ca2+/ROS pathway activating IL-6, which drives myoblast fusion and alters myonuclear density in RyR1-related myopathies.
Area of Science:
- Muscle biology and genetics
- Cell signaling pathways
- Disease pathogenesis
Background:
- Mutations in the skeletal muscle ryanodine receptor (RyR1) lead to RyR1-related myopathies (RyR1-RM), including malignant hyperthermia and central core disease.
- These myopathies are characterized by altered muscle nuclei and sarcoplasmic reticulum (SR) Ca2+ handling.
- Previous studies noted enhanced interleukin-6 (IL-6) expression and myoblast fusion in cultured cells with RyR1 mutations.
Purpose of the Study:
- To investigate if the enhanced myoblast fusion observed in RyR1 mutations is mediated by an IL-6-dependent autocrine loop.
- To elucidate the signaling pathways involved in the RyR1-induced increase in myonuclei accretion.
Main Methods:
- Expressed wild-type and Y523S mutant RyR1 in C2C12 myogenic cells.
- Analyzed myoblast fusion, Ca2+ signaling, reactive oxygen species (ROS) production, and the roles of calpain, calcineurin, IL-6, and p38.
- Utilized neutralizing antibodies against IL-6 and p38 inhibitors to assess pathway involvement.
Main Results:
- The Y523S RyR1 mutation significantly increased myoblast fusion by approximately 300%.
- This fusion stimulation was dependent on sequential activation of SR Ca2+ release, store-operated Ca2+ channels, ROS, calpain, and calcineurin.
- Inhibition of IL-6 or p38 signaling completely abolished the fusion enhancement; exogenous IL-6 or conditioned medium from mutant cells also promoted fusion.
Conclusions:
- Disease-associated RyR1 mutations induce an autocrine IL-6 signaling loop that promotes myoblast fusion and alters myonuclear density.
- This mechanism involves a Ca2+/ROS signaling cascade impacting calpain, calcineurin, IL-6 production, and p38 activation.
- This novel pathway provides critical insights into the pathogenesis of RyR1-related myopathies and congenital myopathies.
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