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Nalbandian, M.

Publications and source records attributed to Nalbandian, M..

2 recordsLinked to original sources

Restoration of Capacity to Build Muscle Strength in Geriatric Mice by Inhibition of the Gerozyme 15-Prostaglandin Dehydrogenase

Loss of skeletal muscle mass and strength with age drives sarcopenia, a syndrome affecting >100 million people worldwide that leads to loss of mobility, independence, and increased mortality. Mechanical overload induces hypertrophy in young muscle, but this response is markedly attenuated with age--a poorly understood phenomenon termed "anabolic resistance." Here we test whether impaired paracrine communication between myofibers and their niche underlies this loss of plasticity in geriatric mice. In aged muscle, pharmacological inhibition of 15-PGDH restores prostaglandin E2 (PGE2) bioavailability and rescues the anabolic response, increasing muscle growth and contractile strength. Single-nuclei RNA-seq revealed a paracrine circuit: PGE2 drives IGF1 synthesis in type IIb myonuclei, which signals to stromal, myogenic, myonuclear, and immune cells. Blocking IGF1 receptor signaling abolished these gains, placing PGE2 upstream of an IGF1-mediated circuit that coordinates multicellular hypertrophy. Thus, 15-PGDH inhibition is a pharmacological strategy to overcome the anabolic resistance and rebuild muscle in aging.

cell biology↗

15-PGDH Inhibition Overcomes Muscle Regenerative Deficit Seen With GLP1-Receptor Agonist-Induced Weight Loss

Glucagon-like peptide-1 receptor agonists (GLP-1 RAs), including long-acting semaglutide, are revolutionary anti-obesity therapies. However, emerging evidence indicates that weight loss may come at the expense of skeletal muscle mass, a tissue essential for mobility, metabolic regulation, and overall health. Here, we show that an inhibitor of the gerozyme 15-hydroxyprostaglandin dehydrogenase (PGDHi), which boosts PGE2 levels, increases skeletal muscle mass, strength, and regeneration in the presence of semaglutide. We find that in a high fat diet-induced mouse model of obesity, semaglutide alone induces significant loss of muscle mass, while retaining contractile function. However, muscle regeneration and recovery of strength post-injury are hindered by semaglutide. This regenerative deficit is due to impeded stem cell function, which is overcome if mice are treated with a combination of PGDHi and semaglutide. Our data show that GLP-1-mediated weight loss interferes with this key muscle-building function, which PGDHi co-treatment counteracts to promote proper muscle regeneration and restored strength.

cell biology↗