Melatonin Alleviates the Impairment of Muscle Bioenergetics and Protein Quality Control Systems in Leptin-Deficiency-Induced Obesity

Author:

Potes Yaiza123ORCID,Díaz-Luis Andrea1,Bermejo-Millo Juan C.123,Pérez-Martínez Zulema124,de Luxán-Delgado Beatriz1,Rubio-González Adrian1,Menéndez-Valle Iván235ORCID,Gutiérrez-Rodríguez José26,Solano Juan J.26,Caballero Beatriz123ORCID,Vega-Naredo Ignacio123,Coto-Montes Ana123ORCID

Affiliation:

1. Department of Morphology and Cell Biology, Faculty of Medicine, University of Oviedo, 33006 Oviedo, Spain

2. Instituto de Investigación Sanitaria del Principado de Asturias (ISPA), 33011 Oviedo, Spain

3. Institute of Neurosciences of the Principality of Asturias (INEUROPA), 33006 Oviedo, Spain

4. Microbiology Service, Central University Hospital of Asturias, 33011 Oviedo, Spain

5. Immunology Service, Central University Hospital of Asturias, 33011 Oviedo, Spain

6. Geriatric Service, Monte Naranco Hospital, 33012 Oviedo, Spain

Abstract

Leptin is critically compromised in the major common forms of obesity. Skeletal muscle is the main effector tissue for energy modification that occurs as a result of the effect of endocrine axes, such as leptin signaling. Our study was carried out using skeletal muscle from a leptin-deficient animal model, in order to ascertain the importance of this hormone and to identify the major skeletal muscle mechanisms affected. We also examined the therapeutic role of melatonin against leptin-induced muscle wasting. Here, we report that leptin deficiency stimulates fatty acid β-oxidation, which results in mitochondrial uncoupling and the suppression of mitochondrial oxidative damage; however, it increases cytosolic oxidative damage. Thus, different nutrient-sensing pathways are disrupted, impairing proteostasis and promoting lipid anabolism, which induces myofiber degeneration and drives oxidative type I fiber conversion. Melatonin treatment plays a significant role in reducing cellular oxidative damage and regulating energy homeostasis and fuel utilization. Melatonin is able to improve both glucose and mitochondrial metabolism and partially restore proteostasis. Taken together, our study demonstrates melatonin to be a decisive mitochondrial function-fate regulator in skeletal muscle, with implications for resembling physiological energy requirements and targeting glycolytic type II fiber recovery.

Funder

Instituto de Salud Carlos III

Government of the Principado de Asturias

Fundación Mutua Madrileña

Publisher

MDPI AG

Subject

Cell Biology,Clinical Biochemistry,Molecular Biology,Biochemistry,Physiology

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