Articles producció científicaCiències Mèdiques Bàsiques

TrkB signaling is correlated with muscular fatigue resistance and less vulnerability to neurodegeneration

  • Dades identificatives

    Identificador:  imarina:9287836
    Autors:  Just-Borras, Laia; Cilleros-Mane, Victor; Polishchuk, Aleksandra; Balanya-Segura, Marta; Tomas, Marta; Garcia, Neus; Tomas, Josep; Lanuza, Maria A
    Resum:
    At the neuromuscular junction (NMJ), motor neurons and myocytes maintain a bidirectional communication that guarantees adequate functionality. Thus, motor neurons’ firing pattern, which is influenced by retrograde muscle-derived neurotrophic factors, modulates myocyte contractibility. Myocytes can be fast-twitch fibers and become easily fatigued or slow-twitch fibers and resistant to fatigue. Extraocular muscles (EOM) show mixed properties that guarantee fast contraction speed and resistance to fatigue and the degeneration caused by Amyotrophic lateral sclerosis (ALS) disease. The TrkB signaling is an activity-dependent pathway implicated in the NMJ well-functioning. Therefore, it could mediate the differences between fast and slow myocytes’ resistance to fatigue. The present study elucidates a specific protein expression profile concerning the TrkB signaling that correlates with higher resistance to fatigue and better neuroprotective capacity through time. The results unveil that Extra-ocular muscles (EOM) express lower levels of NT-4 that extend TrkB signaling, differential PKC expression, and a higher abundance of phosphorylated synaptic proteins that correlate with continuous neurotransmission requirements. Furthermore, common molecular features between EOM and slow soleus muscles including higher neurotrophic consumption and classic and novel PKC isoforms balance correlate with better preservation of these two muscles in ALS. Altogether, higher resistance of Soleus and EOM to fatigue and ALS seems to be associated with specific protein levels concerning the TrkB neurotrophic signaling.
  • Altres:

    Enllaç font original: https://www.frontiersin.org/articles/10.3389/fnmol.2022.1069940/full
    Referència de l'ítem segons les normes APA: Just-Borras, Laia; Cilleros-Mane, Victor; Polishchuk, Aleksandra; Balanya-Segura, Marta; Tomas, Marta; Garcia, Neus; Tomas, Josep; Lanuza, Maria A (2022). TrkB signaling is correlated with muscular fatigue resistance and less vulnerability to neurodegeneration. Frontiers In Molecular Neuroscience, 15(), 1069940-. DOI: 10.3389/fnmol.2022.1069940
    Referència a l'article segons font original: Frontiers In Molecular Neuroscience. 15 1069940-
    DOI de l'article: 10.3389/fnmol.2022.1069940
    Any de publicació de la revista: 2022
    Entitat: Universitat Rovira i Virgili
    Versió de l'article dipositat: info:eu-repo/semantics/publishedVersion
    Data d'alta del registre: 2024-10-12
    Autor/s de la URV: Balanya Segura, Marta / Cilleros Mañé, Víctor / Garcia Sancho, Maria de les Neus / Just Borràs, Laia / Lanuza Escolano, María Angel / POLISHCHUK, ALEKSANDRA / Tomás Ferré, José Maria / Tomas Marginet, Marta
    Departament: Ciències Mèdiques Bàsiques
    URL Document de llicència: https://repositori.urv.cat/ca/proteccio-de-dades/
    Tipus de publicació: Journal Publications
    Autor segons l'article: Just-Borras, Laia; Cilleros-Mane, Victor; Polishchuk, Aleksandra; Balanya-Segura, Marta; Tomas, Marta; Garcia, Neus; Tomas, Josep; Lanuza, Maria A
    Accès a la llicència d'ús: https://creativecommons.org/licenses/by/3.0/es/
    Àrees temàtiques: Neurosciences, Molecular biology, Medicina ii, Ciências biológicas ii, Cellular and molecular neuroscience
    Adreça de correu electrònic de l'autor: marta.balanya@urv.cat, aleksandra.polishchuk@urv.cat, laia.just@urv.cat, marta.tomas@urv.cat, aleksandra.polishchuk@urv.cat, marta.balanya@urv.cat, victor.cilleros@alumni.urv.cat, josepmaria.tomas@urv.cat, laia.just@urv.cat, mariaangel.lanuza@urv.cat
  • Paraules clau:

    Trkb-bdnf
    Skeletal muscle
    Protein-kinase-c
    Pkc
    Pka
    Neuromuscular junction
    Fatigue-resistant
    Eom
    synaptosome-associated protein
    skeletal-muscle
    neurotrophic factor
    neurotransmitter release
    neuromuscular-transmission
    motor-neuron
    fiber-type
    differential phosphorylation
    dependent phosphorylation
    Cellular and Molecular Neuroscience
    Molecular Biology
    Neurosciences
    Medicina ii
    Ciências biológicas ii
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