Repeated Application of Passive Mechanical Stress Produces Selective Metabolic and Extracellular Matrix Adaptations in Human Skeletal Muscle but Does Not Prevent Disuse-Induced Atrophy | AMiner
Repeated Application of Passive Mechanical Stress Produces Selective Metabolic and Extracellular Matrix Adaptations in Human Skeletal Muscle but Does Not Prevent Disuse-Induced Atrophy
Mohadeseh Ahmadi,Charles Seaman,Erik D Marchant,James Bartling,David Kofoed,Karisa Coombs,Chad R Hancock,Robert D Hyldahl
Exposure to mechanical stimuli can modulate skeletal muscle structure and metabolism, yet the extent to which repeated, isolated mechanical stress promotes adaptive remodeling in humans has not been defined. We investigated whether repeated percussive massage (PM)—a widely used but poorly validated therapeutic modality—induces beneficial skeletal muscle adaptations under ambulatory conditions and whether such adaptations confer resilience during limb disuse in humans. In a 6-wk randomized trial, PM did not alter myofiber cross-sectional area, satellite cell abundance, or capillary density, but RNA-Seq pathway analysis revealed enrichment of extracellular matrix (ECM) remodeling networks, which was supported by increases in the expression of basement membrane and focal adhesion components. PM also reduced subcutaneous fat thickness and increased fatty acid-supported mitochondrial respiration while lowering mitochondrial H2O2 emission. In a separate 10-day immobilization study, PM failed to attenuate unloading-induced reductions in muscle size or strength. However, PM partially preserved fatty acid-supported respiratory capacity relative to a control group, indicating a selective metabolic resilience. Finally, in an acute mechanistic experiment, unilateral PM did not increase subcutaneous adipose tissue lipolysis, as interstitial glycerol concentrations rose similarly in treated and untreated limbs, suggesting that chronic reductions in subcutaneous fat thickness were not driven by lipolytic activation. Collectively, these findings demonstrate that repeated PM promotes targeted skeletal muscle metabolic adaptations, yet is insufficient to induce overt structural remodeling or prevent disuse-induced functional decline.