MACF1 controls skeletal muscle function through the microtubule-dependent localization of extra-synaptic myonuclei and mitochondria biogenesis

Author:

Ghasemizadeh Alireza1ORCID,Christin Emilie1,Guiraud Alexandre1,Couturier Nathalie1,Abitbol Marie12,Risson Valerie1ORCID,Girard Emmanuelle1ORCID,Jagla Christophe3,Soler Cedric3ORCID,Laddada Lilia3,Sanchez Colline1,Jaque-Fernandez Francisco-Ignacio1,Jacquemond Vincent1,Thomas Jean-Luc1,Lanfranchi Marine1,Courchet Julien1ORCID,Gondin Julien1,Schaeffer Laurent1,Gache Vincent1ORCID

Affiliation:

1. Institut NeuroMyoGène, CNRS UMR5310, INSERM U1217, Faculté de Médecine Rockefeller, Université Claude Bernard Lyon I, Lyon Cedex, France

2. Université Marcy l’Etoile, VetAgro Sup, Lyon, France

3. GReD Laboratory, Clermont-Auvergne University, INSERM U1103, CNRS, Clermont-Ferrand, France

Abstract

Skeletal muscles are composed of hundreds of multinucleated muscle fibers (myofibers) whose myonuclei are regularly positioned all along the myofiber’s periphery except the few ones clustered underneath the neuromuscular junction (NMJ) at the synaptic zone. This precise myonuclei organization is altered in different types of muscle disease, including centronuclear myopathies (CNMs). However, the molecular machinery regulating myonuclei position and organization in mature myofibers remains largely unknown. Conversely, it is also unclear how peripheral myonuclei positioning is lost in the related muscle diseases. Here, we describe the microtubule-associated protein, MACF1, as an essential and evolutionary conserved regulator of myonuclei positioning and maintenance, in cultured mammalian myotubes, in Drosophila muscle, and in adult mammalian muscle using a conditional muscle-specific knockout mouse model. In vitro, we show that MACF1 controls microtubules dynamics and contributes to microtubule stabilization during myofiber’s maturation. In addition, we demonstrate that MACF1 regulates the microtubules density specifically around myonuclei, and, as a consequence, governs myonuclei motion. Our in vivo studies show that MACF1 deficiency is associated with alteration of extra-synaptic myonuclei positioning and microtubules network organization, both preceding NMJ fragmentation. Accordingly, MACF1 deficiency results in reduced muscle excitability and disorganized triads, leaving voltage-activated sarcoplasmic reticulum Ca2+ release and maximal muscle force unchanged. Finally, adult MACF1-KO mice present an improved resistance to fatigue correlated with a strong increase in mitochondria biogenesis.

Funder

Programme AVENIR 2014

AFM-Téléthon

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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