Gymnastik- och idrottshögskolan, GIH

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Intact single muscle fibres from SOD1G93A amyotrophic lateral sclerosis mice display preserved specific force, fatigue resistance and training-like adaptations
Karolinska Inst, Dept Physiol & Pharmacol, S-17177 Stockholm, Sweden;;York Univ, Sch Kinesiol & Hlth Sci, Toronto, ON M3J 1P3, Canada;.ORCID iD: 0000-0003-3862-2967
Karolinska Inst, Dept Neurosci, S-171773 Stockholm, Sweden;.ORCID iD: 0000-0003-4361-163X
Karolinska Inst, Dept Physiol & Pharmacol, S-17177 Stockholm, Sweden;;Orebro Univ, Dept Hlth Sci, S-70182 Orebro, Sweden;.ORCID iD: 0000-0002-5322-4150
Karolinska Inst, Dept Physiol & Pharmacol, S-17177 Stockholm, Sweden;;Lithuanian Sports Univ, Sports Sci & Innovat Inst, LT-44221 Kaunas, Lithuania;.ORCID iD: 0000-0002-3886-9612
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2019 (English)In: Journal of Physiology, ISSN 0022-3751, E-ISSN 1469-7793, Vol. 597, no 12, p. 3133-3146Article in journal (Refereed) Published
Abstract [en]

Key pointsHow defects in muscle contractile function contribute to weakness in amyotrophic lateral sclerosis (ALS) were systematically investigated. Weakness in whole muscles from late stage SOD1(G93A) mice was explained by muscle atrophy as seen by reduced mass and maximal force. On the other hand, surviving single muscle fibres in late stage SOD1(G93A) have preserved intracellular Ca2+ handling, normal force-generating capacity and increased fatigue resistance. These intriguing findings provide a substrate for therapeutic interventions to potentiate muscular capacity and delay the progression of the ALS phenotype. Amyotrophic lateral sclerosis (ALS) is a motor neuron disease characterized by degeneration and loss of motor neurons, leading to severe muscle weakness and paralysis. The SOD1(G93A) mouse model of ALS displays motor neuron degeneration and a phenotype consistent with human ALS. The purpose of this study was to determine whether muscle weakness in ALS can be attributed to impaired intrinsic force generation in skeletal muscles. In the current study, motor neuron loss and decreased force were evident in whole flexor digitorum brevis (FDB) muscles of mice in the late stage of disease (125-150 days of age). However, in intact single muscle fibres, specific force, tetanic myoplasmic free [Ca2+] ([Ca2+](i)), and resting [Ca2+](i) remained unchanged with disease. Fibre-type distribution was maintained in late-stage SOD1(G93A) FDB muscles, but remaining muscle fibres displayed greater fatigue resistance compared to control and showed increased expression of myoglobin and mitochondrial respiratory chain proteins that are important determinants of fatigue resistance. Expression of genes central to both mitochondrial biogenesis and muscle atrophy where increased, suggesting that atrophic and compensatory adaptive signalling occurs simultaneously within the muscle tissue. These results support the hypothesis that muscle weakness in SOD1(G93A) is primarily attributed to neuromuscular degeneration and not intrinsic muscle fibre defects. In fact, surviving muscle fibres displayed maintained adaptive capacity with an exercise training-like phenotype, which suggests that compensatory mechanisms are activated that can function to delay disease progression.

Place, publisher, year, edition, pages
WILEY , 2019. Vol. 597, no 12, p. 3133-3146
Keywords [en]
Amyotrophic lateral sclerosis, Muscle fatigue, Cytosolic calcium, Force, Muscle adaptation
National Category
Physiology and Anatomy
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URN: urn:nbn:se:gih:diva-8974DOI: 10.1113/JP277456ISI: 000474245500011PubMedID: 31074054OAI: oai:DiVA.org:gih-8974DiVA, id: diva2:2033979
Available from: 2026-01-30 Created: 2026-01-30 Last updated: 2026-01-30

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Lanner, Johanna

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Cheng, Arthur J.Allodi, IlaryChaillou, ThomasSchlittler, MajaLanner, JohannaHedlund, EvaAndersson, Daniel C.
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