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Mammucari, C.

Publications and source records attributed to Mammucari, C..

2 recordsLinked to original sources

ALTERATIONS IN PEROXISOMAL-MITOCHONDRIAL INTERPLAY IN SKELETAL MUSCLE ACCELERATES MUSCLE DYSFUNCTION

Whole-body energy expenditure, as well as glucose and lipid metabolism, are regulated by skeletal muscles, which account for 40-50% of human body mass. Peroxisomes are dynamic organelles that play a crucial role in lipid metabolism and clearance of reactive oxygen species, however their role in muscles remains poorly understood. To clarify this issue, we generated a muscle-specific transgenic mouse line with peroxisome import deficiency resulting from deletion of peroxisomal biogenesis factor 5 (Pex5). Pex5 inhibition disrupted the tethering between peroxisomes and mitochondria, impaired lipid metabolism and reduced muscle force and exercise performance. Moreover, mitochondrial content and function were also altered, accelerating age-related structural defects, neuromuscular junction degeneration, and muscle atrophy. Altogether, our findings show the importance of preserving peroxisomal function and their contact sites with mitochondria to maintain muscle health during aging.

cell biology↗

Mitochondrial Calcium Uptake Declines during Aging and is Directly Activated by Oleuropein to Boost Energy Metabolism and Skeletal Muscle Performance

Mitochondrial calcium (mtCa2+) uptake via the Mitochondrial Calcium Uniporter (MCU) couples the regulation of calcium homeostasis to energy production. mtCa2+ uptake is rate-limiting for mitochondrial activation during muscle contraction, but how MCU is affected during physiopathology and whether it can be stimulated therapeutically remains largely uncharacterized. By profiling human and preclinical aging of skeletal muscle, we discovered a conserved down-regulation of MCUR1 during aging that decreases mtCa2+ uptake and drives sarcopenia. Through a screen of 5000 bioactive nutrients, we identify the natural polyphenol Oleuropein as a specific MCU activator that stimulates mitochondrial respiration via binding to MICU1. Oleuropein activates mtCa2+ uptake and oxidative energy metabolism to enhance endurance and limit fatigue in vivo both in young and aged. These effects of Oleuropein are mediated by an MCU-dependent mechanism in skeletal muscle as they are lost upon muscle-specific MCU KO. Our work demonstrates that impaired mtCa2+ uptake causes mitochondrial dysfunction during aging and establishes Oleuropein as a novel nutrient that specifically targets MCU to stimulate mitochondrial bioenergetics and muscle performance.

physiology↗