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Application of Chronic Stimulation to Study Contractile Activity-induced Rat Skeletal Muscle Phenotypic Adaptations
Published on: January 25, 2018
STIM1 over-activation generates a multi-systemic phenotype affecting the skeletal muscle, spleen, eye, skin, bones
Roberto Silva-Rojas1, Susan Treves2,3, Hugues Jacobs1,4
1Institut de Génétique et de Biologie Moléculaire et Cellulaire (IGBMC), Inserm, CNRS, Université de Strasbourg, Illkirch, France.
Abstract:
Strict regulation of Ca2+ homeostasis is essential for normal cellular physiology. Store-operated Ca2+ entry (SOCE) is a major mechanism controlling basal Ca2+ levels and intracellular Ca2+ store refilling, and abnormal SOCE severely impacts on human health. Overactive SOCE results in excessive extracellular Ca2+ entry due to dominant STIM1 or ORAI1 mutations and has been associated with tubular aggregate myopathy (TAM) and Stormorken syndrome (STRMK). Both disorders are spectra of the same disease and involve muscle weakness, myalgia and cramps, and additional multi-systemic signs including miosis, bleeding diathesis, hyposplenism, dyslexia, short stature and ichthyosis. To elucidate the physiological consequences of STIM1 over-activation, we generated a murine model harboring the most common TAM/STRMK mutation and characterized the phenotype at the histological, ultrastructural, metabolic, physiological and functional level. In accordance with the clinical picture of TAM/STRMK, the Stim1R304W/+ mice manifested muscle weakness, thrombocytopenia, skin and eye anomalies and spleen dysfunction, as well as additional features not yet observed in patients such as abnormal bone architecture and immune system dysregulation. The murine muscles exhibited contraction and relaxation defects as well as dystrophic features, and functional investigations unraveled increased Ca2+ influx in myotubes. In conclusion, we provide insight into the pathophysiological effect of the STIM1 R304W mutation in different cells, tissues and organs and thereby significantly contribute to a deeper understanding of the pathomechanisms underlying TAM/STRMK and other human disorders involving aberrant Ca2+ homeostasis and affecting muscle, bones, platelets or the immune system.
Insights
Overactive store-operated calcium entry (SOCE) due to STIM1 mutations causes tubular aggregate myopathy and Stormorken syndrome. A new mouse model reveals muscle, bone, and immune defects, deepening understanding of these calcium-related disorders.
Area of Science:
- Biochemistry
- Cell Biology
- Genetics
Background:
- Calcium (Ca2+) homeostasis is vital for cellular function.
- Store-operated Ca2+ entry (SOCE) regulates basal Ca2+ levels and store refilling.
- Dysfunctional SOCE, often from STIM1 or ORAI1 mutations, leads to diseases like tubular aggregate myopathy (TAM) and Stormorken syndrome (STRMK).
Purpose of the Study:
- To investigate the physiological impact of STIM1 over-activation using a mouse model with a common TAM/STRMK mutation.
- To characterize the multi-systemic consequences of the STIM1 R304W mutation.
Main Methods:
- Generation and comprehensive phenotyping of a Stim1R304W/+ mouse model.
- Histological, ultrastructural, metabolic, physiological, and functional analyses were performed.
Main Results:
- The Stim1R304W/+ mice exhibited phenotypes mirroring TAM/STRMK, including muscle weakness, thrombocytopenia, skin and eye abnormalities, and spleen dysfunction.
- Novel findings in mice included abnormal bone architecture and immune system dysregulation.
- Murine muscles showed contraction/relaxation defects and dystrophic features, with increased Ca2+ influx observed in myotubes.
Conclusions:
- The study provides insights into the pathophysiological effects of the STIM1 R304W mutation across various cells, tissues, and organs.
- This research enhances the understanding of disease mechanisms in TAM/STRMK and other disorders linked to aberrant Ca2+ homeostasis affecting muscles, bones, platelets, or the immune system.
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