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Attenuated Ca(2+) Release in a Mouse Model of Limb Girdle Muscular Dystrophy 2A

Overview
Journal Skelet Muscle
Specialty Physiology
Date 2016 Feb 26
PMID 26913171
Citations 12
Authors
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Abstract

Background: Mutations in CAPN3 cause limb girdle muscular dystrophy type 2A (LGMD2A), a progressive muscle wasting disease. CAPN3 is a non-lysosomal, Ca-dependent, muscle-specific proteinase. Ablation of CAPN3 (calpain-3 knockout (C3KO) mice) leads to reduced ryanodine receptor (RyR1) expression and abnormal Ca2+/calmodulin-dependent protein kinase II (Ca-CaMKII)-mediated signaling. We previously reported that Ca(2+) release measured by fura2-FF imaging in response to single action potential stimulation was reduced in old C3KO mice; however, the use of field stimulation prevented investigation of the mechanisms underlying this impairment. Furthermore, our prior studies were conducted on older animals, whose muscles showed advanced muscular dystrophy, which prevented us from establishing whether impaired Ca(2+) handling is an early feature of disease. In the current study, we sought to overcome these matters by studying single fibers isolated from young wild-type (WT) and C3KO mice using a low affinity calcium dye and high intracellular ethylene glycol-bis(2-aminoethylether)-n,n,n',n'-tetraacetic acid (EGTA) to measure Ca(2+) fluxes. Muscles were subjected to both current and voltage clamp conditions.

Methods: Standard and confocal fluorescence microscopy was used to study Ca(2+) release in single fibers enzymatically isolated from hind limb muscles of wild-type and C3KO mice. Two microelectrode amplifier and experiments were performed under current or voltage clamp conditions. Calcium concentration changes were detected with an impermeant low affinity dye in the presence of high EGTA intracellular concentrations, and fluxes were calculated with a single compartment model. Standard Western blotting analysis was used to measure the concentration of RyR1 and the α subunit of the dihydropyridine (αDHPR) receptors. Data are presented as mean ± SEM and compared with the Student's test with significance set at p < 0.05.

Results: We found that the peak value of Ca(2+) fluxes elicited by single action potentials was significantly reduced by 15-20 % in C3KO fibers, but the kinetics was unaltered. Ca(2+) release elicited by tetanic stimulation was also impaired in C3KO fibers. Confocal studies confirmed that Ca(2+) release was similarly reduced in all triads of C3KO mice. Voltage clamp experiments revealed a normal voltage dependence of Ca(2+) release in C3KO mice but reduced peak Ca(2+) fluxes as with action potential stimulation. These findings concur with biochemical observations of reduced RyR1 and αDHPR levels in C3KO muscles and reduced mechanical output. Confocal studies revealed a similar decrease in Ca(2+) release at all triads consistent with a homogenous reduction of functional voltage activated Ca(2+) release sites.

Conclusions: Overall, these results suggest that decreased Ca(2+) release is an early defect in calpainopathy and may contribute to the observed reduction of CaMKII activation in C3KO mice.

Citing Articles

Loss of Calpain 3 dysregulates store-operated calcium entry and its exercise response in mice.

Villani K, Zhong R, Henley-Beasley C, Rastelli G, Harris E, Boncompagni S FASEB J. 2024; 38(14):e23825.

PMID: 39031532 PMC: 11299996. DOI: 10.1096/fj.202400697R.


Targeting the Ubiquitin-Proteasome System in Limb-Girdle Muscular Dystrophy With CAPN3 Mutations.

Lasa-Elgarresta J, Mosqueira-Martin L, Gonzalez-Imaz K, Marco-Moreno P, Gerenu G, Mamchaoui K Front Cell Dev Biol. 2022; 10:822563.

PMID: 35309930 PMC: 8924035. DOI: 10.3389/fcell.2022.822563.


Targeted Next-Generation Sequencing Reveals Mutations in Non-coding Regions and Potential Regulatory Sequences of Calpain-3 Gene in Polish Limb-Girdle Muscular Dystrophy Patients.

Macias A, Fichna J, Topolewska M, Rdowicz M, Kaminska A, Kostera-Pruszczyk A Front Neurosci. 2021; 15:692482.

PMID: 34720847 PMC: 8551377. DOI: 10.3389/fnins.2021.692482.


CAPN3: A muscle‑specific calpain with an important role in the pathogenesis of diseases (Review).

Chen L, Tang F, Gao H, Zhang X, Li X, Xiao D Int J Mol Med. 2021; 48(5).

PMID: 34549305 PMC: 8480384. DOI: 10.3892/ijmm.2021.5036.


Systemic delivery of AAVrh74.tMCK.hCAPN3 rescues the phenotype in a mouse model for LGMD2A/R1.

Sahenk Z, Ozes B, Murrey D, Myers M, Moss K, Yalvac M Mol Ther Methods Clin Dev. 2021; 22:401-414.

PMID: 34514031 PMC: 8413669. DOI: 10.1016/j.omtm.2021.06.010.


References
1.
Song L, Sham J, Stern M, Lakatta E, Cheng H . Direct measurement of SR release flux by tracking 'Ca2+ spikes' in rat cardiac myocytes. J Physiol. 1998; 512 ( Pt 3):677-91. PMC: 2231234. DOI: 10.1111/j.1469-7793.1998.677bd.x. View

2.
Kramerova I, Kudryashova E, Wu B, Germain S, Vandenborne K, Romain N . Mitochondrial abnormalities, energy deficit and oxidative stress are features of calpain 3 deficiency in skeletal muscle. Hum Mol Genet. 2009; 18(17):3194-205. PMC: 2722983. DOI: 10.1093/hmg/ddp257. View

3.
DiFranco M, Novo D, Vergara J . Characterization of the calcium release domains during excitation-contraction coupling in skeletal muscle fibres. Pflugers Arch. 2002; 443(4):508-19. DOI: 10.1007/s004240100719. View

4.
Prosser B, Hernandez-Ochoa E, Zimmer D, Schneider M . Simultaneous recording of intramembrane charge movement components and calcium release in wild-type and S100A1-/- muscle fibres. J Physiol. 2009; 587(Pt 18):4543-59. PMC: 2766656. DOI: 10.1113/jphysiol.2009.177246. View

5.
DiFranco M, Capote J, Vergara J . Optical imaging and functional characterization of the transverse tubular system of mammalian muscle fibers using the potentiometric indicator di-8-ANEPPS. J Membr Biol. 2006; 208(2):141-53. DOI: 10.1007/s00232-005-0825-9. View