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Motoneuron deafferentation and gliosis occur in association with neuromuscular regressive changes during ageing in mice
Blasco, Alba (Institut de Recerca Biomèdica de Lleida)
Gras, Sílvia (Institut de Recerca Biomèdica de Lleida)
Mòdol Caballero, Guillem (Universitat Autònoma de Barcelona. Institut de Neurociències)
Tarabal, Olga (Institut de Recerca Biomèdica de Lleida)
Llagostera Casanovas, Anna (Institut de Recerca Biomèdica de Lleida)
Piedrafita Llorens, Lídia (Institut de Recerca Biomèdica de Lleida)
Barranco, Alejandro (Abbott Nutrition Research and Development)
Das, Tapas (Abbott Nutrition Research and Development)
Pereira, Suzette L. (Abbott Nutrition Research and Development)
Navarro, X. (Xavier) (Universitat Autònoma de Barcelona. Institut de Neurociències)
Rueda Cabrera, Ricardo (Abbott Nutrition Research and Development)
Esquerda, Josep E. (Institut de Recerca Biomèdica de Lleida)
Calderó, Jordi (Institut de Recerca Biomèdica de Lleida)

Fecha: 2020
Resumen: The cellular mechanisms underlying the age-associated loss of muscle mass and function (sarcopenia) are poorly understood, hampering the development of effective treatment strategies. Here, we performed a detailed characterization of age-related pathophysiological changes in the mouse neuromuscular system. Young, adult, middle-aged, and old (1, 4, 14, and 24-30 months old, respectively) C57BL/6J mice were used. Motor behavioural and electrophysiological tests and histological and immunocytochemical procedures were carried out to simultaneously analyse structural, molecular, and functional age-related changes in distinct cellular components of the neuromuscular system. Ageing was not accompanied by a significant loss of spinal motoneurons (MNs), although a proportion (~15%) of them in old mice exhibited an abnormally dark appearance. Dark MNs were also observed in adult (~9%) and young (~4%) animals, suggesting that during ageing, some MNs undergo early deleterious changes, which may not lead to MN death. Old MNs were depleted of cholinergic and glutamatergic inputs (~40% and ~45%, respectively, P < 0. 01), suggestive of age-associated alterations in MN excitability. Prominent microgliosis and astrogliosis [~93% (P < 0. 001) and ~100% (P < 0. 0001) increase vs. adults, respectively] were found in old spinal cords, with increased density of pro-inflammatory M1 microglia and A1 astroglia (25-fold and 4-fold increase, respectively, P < 0. 0001). Ageing resulted in significant reductions in the nerve conduction velocity and the compound muscle action potential amplitude (~30%, P < 0. 05, vs. adults) in old distal plantar muscles. Compared with adult muscles, old muscles exhibited significantly higher numbers of both denervated and polyinnervated neuromuscular junctions, changes in fibre type composition, higher proportion of fibres showing central nuclei and lipofuscin aggregates, depletion of satellite cells, and augmented expression of different molecules related to development, plasticity, and maintenance of neuromuscular junctions, including calcitonin gene-related peptide, growth associated protein 43, agrin, fibroblast growth factor binding protein 1, and transforming growth factor-β1. Overall, these alterations occurred at varying degrees in all the muscles analysed, with no correlation between the age-related changes observed and myofiber type composition or muscle topography. Our data provide a global view of age-associated neuromuscular changes in a mouse model of ageing and help to advance understanding of contributing pathways leading to development of sarcopenia.
Ayudas: Ministerio de Ciencia e Innovación RTI2018-099278-B-I00
Derechos: Aquest document està subjecte a una llicència d'ús Creative Commons. Es permet la reproducció total o parcial, la distribució, la comunicació pública de l'obra i la creació d'obres derivades, sempre que no sigui amb finalitats comercials, i sempre que es reconegui l'autoria de l'obra original. Creative Commons
Lengua: Anglès
Documento: Article ; recerca ; Versió publicada
Materia: Sarcopenia ; Ageing ; C57BL/6J mice ; Motoneurons ; Central synapses ; Glia ; Neuromuscular junction ; Skeletal muscle
Publicado en: Journal of Cachexia, Sarcopenia and Muscle, Vol. 11 (july 2020) , p. 1628-1660, ISSN 2190-6009

DOI: 10.1002/jcsm.12599
PMID: 32691534


33 p, 66.8 MB

El registro aparece en las colecciones:
Documentos de investigación > Documentos de los grupos de investigación de la UAB > Centros y grupos de investigación (producción científica) > Ciencias de la salud y biociencias > Institut de Neurociències (INc)
Artículos > Artículos de investigación
Artículos > Artículos publicados

 Registro creado el 2020-12-28, última modificación el 2023-03-21



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