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Citations to this article

Mitigation of muscular dystrophy in mice by SERCA overexpression in skeletal muscle
Sanjeewa A. Goonasekera, … , Evangelia G. Kranias, Jeffery D. Molkentin
Sanjeewa A. Goonasekera, … , Evangelia G. Kranias, Jeffery D. Molkentin
Published February 1, 2011
Citation Information: J Clin Invest. 2011;121(3):1044-1052. https://doi.org/10.1172/JCI43844.
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Research Article Muscle biology Article has an altmetric score of 6

Mitigation of muscular dystrophy in mice by SERCA overexpression in skeletal muscle

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Abstract

Muscular dystrophies (MDs) comprise a group of degenerative muscle disorders characterized by progressive muscle wasting and often premature death. The primary defect common to most MDs involves disruption of the dystrophin-glycoprotein complex (DGC). This leads to sarcolemmal instability and Ca2+ influx, inducing cellular necrosis. Here we have shown that the dystrophic phenotype observed in δ-sarcoglycan–null (Sgcd–/–) mice and dystrophin mutant mdx mice is dramatically improved by skeletal muscle–specific overexpression of sarcoplasmic reticulum Ca2+ ATPase 1 (SERCA1). Rates of myofiber central nucleation, tissue fibrosis, and serum creatine kinase levels were dramatically reduced in Sgcd–/– and mdx mice with the SERCA1 transgene, which also rescued the loss of exercise capacity in Sgcd–/– mice. Adeno-associated virus–SERCA2a (AAV-SERCA2a) gene therapy in the gastrocnemius muscle of Sgcd–/– mice mitigated dystrophic disease. SERCA1 overexpression reversed a defect in sarcoplasmic reticulum Ca2+ reuptake that characterizes dystrophic myofibers and reduced total cytosolic Ca2+. Further, SERCA1 overexpression almost completely rescued the dystrophic phenotype in a mouse model of MD driven solely by Ca2+ influx. Mitochondria isolated from the muscle of SERCA1-Sgcd–/– mice were no longer swollen and calpain activation was reduced, suggesting protection from Ca2+-driven necrosis. Our results suggest a novel therapeutic approach using SERCA1 to abrogate the altered intracellular Ca2+ levels that underlie most forms of MD.

Authors

Sanjeewa A. Goonasekera, Chi K. Lam, Douglas P. Millay, Michelle A. Sargent, Roger J. Hajjar, Evangelia G. Kranias, Jeffery D. Molkentin

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Thrombospondin expression in myofibers stabilizes muscle membranes: ( A ) Thbs4 mRNA levels in human skeletal muscle biopsies from normal or patients with Becker MD (BMD; n = 5), Duchenne MD (DMD; n = 10) or 2 different types of limb-girdle MD (LGMD; n = 10 for both). *p<0.05 vs. normal (n = 18) by Student’s t test. Data are presented as mean ± SEM. Full analysis including all 11 human muscle diseases is shown in Figure 1—figure supplement 1A. ( B,C ) Western blot for the expression of Thbs4, ATF6α-N (50 kDa, nuclear) and BiP in the quadriceps of WT, Sgcd -/- and mdx mice at six weeks (w) and three months (mo) of age (n = 4 biological replicates). ( D ) Schematic diagram showing the skeletal muscle-specific transgene to overexpress Thbs4 and (lower) Western blots for Thbs4 or gapdh control from WT and Tg mice at 6 w of age from Quad, quadriceps; Gas, gastrocnemius; Sol, soleus; Diaph, diaphragm; and heart (n = 2 biological replicates). ( E ) Upper micrographs represent co-immunofluorescent labeling of intracellular Thbs4 (green) with calreticulin (red) on paraffin embedded quadriceps (Quad.) of WT, Thbs4-Tg and Sgcd -/- mice at 3 mo of age (scale bar = 20 μm). Arrowheads indicate co-localization of Thbs4 with calreticulin in intracellular vesicles in the myofibers. Lower micrographs represent co- immunofluorescent labeling of Thbs4 (green) with collagen I (red) on cryo-embedded Quad of WT, Thbs4-Tg and Sgcd -/- mice at 3 mo of age (scale bar = 50 μm). Arrowheads indicate co-localization of Thbs4 with collagen I in the extracellular milieu; the star marks a myofiber with both intra- and extracellular Thbs4 labeling from a diseased muscle. Nuclei are visualized in blue. Representative images of 4 mice per genotype are shown. ( F ) Western blot analysis of Thbs4 and the ER-stress proteins ATF6α-N (50 kDa, nuclear), BiP, PDI, calreticulin (Calret.), and Armet in 6w old WT, Thbs4-Tg and Sgcd -/- quadriceps (n = 4 biological replicates). ( G ) Transmission electron microscopy in WT versus Thbs4 Tg quadriceps at 3 mo of age showing a massive expansion of intramyofibrillar and subsarcolemmal ER and associated vesicles with Thbs4 overexpression (arrowheads, scale bar = 2 μm). Representative images of 2 mice per genotype are shown. ( H ) Immunogold electron microscopy shows that Thbs4 (6 nm gold particles; yellow arrows) robustly localizes to the expanded sub-sarcolemmal vesicular compartment in Thbs4-Tg quadriceps, compared to endogenously expressed Thbs4 in WT quadriceps. Representative images of 2 mice are shown. Scale bar = 50 nm
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Update on the Treatment of Duchenne Muscular Dystrophy
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Current Neurology and Neuroscience Reports 2013
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S Duguez, W Duddy, H Johnston, J Lainé, MC Bihan, KJ Brown, A Bigot, Y Hathout, G Butler-Browne, T Partridge
Cellular and Molecular Life Sciences 2013
Increased sarcolipin expression and decreased sarco(endo)plasmic reticulum Ca2+ uptake in skeletal muscles of mouse models of Duchenne muscular dystrophy
JS Schneider, M Shanmugam, JP Gonzalez, H Lopez, R Gordan, D Fraidenraich, GJ Babu
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Early onset muscle weakness and disruption of muscle proteins in mouse models of spinal muscular atrophy
JG Boyer, LM Murray, K Scott, YD Repentigny, JM Renaud, R Kothary
Skeletal Muscle 2013
Ca²⁺-pumping impairment during repetitive fatiguing contractions in single myofibers: role of cross-bridge cycling
L Nogueira, AA Shiah, PG Gandra, MC Hogan
American Journal of Physiology - Regulatory, Integrative and Comparative Physiology 2013
Mitochondrial Alterations and Oxidative Stress in an Acute Transient Mouse Model of Muscle Degeneration: IMPLICATIONS FOR MUSCULAR DYSTROPHY AND RELATED MUSCLE PATHOLOGIES
R Ramadasan-Nair, N Gayathri, S Mishra, B Sunitha, RB Mythri, A Nalini, Y Subbannayya, HC Harsha, U Kolthur-Seetharam, MM Bharath
The Journal of biological chemistry 2013
Interactions between sarco-endoplasmic reticulum and mitochondria in cardiac and skeletal muscle – pivotal roles in Ca2+ and reactive oxygen species signaling
V Eisner, G Csordás, G Hajnóczky
Journal of cell science 2013
Leaky ryanodine receptors in β-sarcoglycan deficient mice: a potential common defect in muscular dystrophy
DC Andersson, AC Meli, S Reiken, MJ Betzenhauser, A Umanskaya, T Shiomi, J D'Armiento, AR Marks
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F Altamirano, JR López, C Henríquez, T Molinski, PD Allen, E Jaimovich
The Journal of biological chemistry 2012
Enhancing Muscle Membrane Repair by Gene Delivery of MG53 Ameliorates Muscular Dystrophy and Heart Failure in δ-Sarcoglycan-deficient Hamsters
B He, R Tang, N Weisleder, B Xiao, Z Yuan, C Cai, H Zhu, P Lin, C Qiao, J Li, C Mayer, J Li, J Ma, X Xiao
Molecular Therapy 2012
Hsp72 preserves muscle function and slows progression of severe muscular dystrophy
SM Gehrig, C van der Poel, TA Sayer, JD Schertzer, DC Henstridge, JE Church, S Lamon, AP Russell, KE Davies, MA Febbraio, GS Lynch
Nature 2012
Signs of Progress in Gene Therapy for Muscular Dystrophy Also Warrant Caution
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Molecular Therapy 2012
Specific training improves skeletal muscle mitochondrial calcium homeostasis after eccentric exercise
B Rattray, M Thompson, P Ruell, C Caillaud
European Journal of Applied Physiology 2012
Orai1 mediates exacerbated Ca(2+) entry in dystrophic skeletal muscle
X Zhao, JG Moloughney, S Zhang, S Komazaki, N Weisleder
PloS one 2012
High-throughput FRET assay yields allosteric SERCA activators
RL Cornea, SJ Gruber, EL Lockamy, JM Muretta, D Jin, J Chen, R Dahl, T Bartfai, KM Zsebo, GD Gillispie, DD Thomas
Journal of biomolecular screening 2012
SERCA2a gene transfer improves electrocardiographic performance in aged mdx mice
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Journal of Translational Medicine 2011
Tropomodulin Capping of Actin Filaments in Striated Muscle Development and Physiology
DS Gokhin, VM Fowler
Journal of Biomedicine and Biotechnology 2011
Adaptive strength gains in dystrophic muscle exposed to repeated bouts of eccentric contraction
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Journal of applied physiology 2011

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Referenced in 8 patents
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