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Aubertin-Leheudre, M.

Publications and source records attributed to Aubertin-Leheudre, M..

3 recordsLinked to original sources

Daily physical activity behavior: a compensatory factor to physical adaptations variability following a 12-week power training in older men

Physical activity (PA) is effective to counteract age-related declines. However, inter-individual variability in training adaptations may limit prediction of individual responses and intervention optimization. Daily PA behavior may contribute to this variability. The objective was to examine daily PA behavior through a 12-week supervised power training (PT) and its associations with clinical adaptations in 36 older men. Time of PA, step count, total (TEE) and active (AEE) energy expenditure, metabolic equivalents of task (METs), and sedentary time were assessed using a 3D accelerometer for three days surrounding PT sessions (Day-PT-1, Day-PT and Day-PT+1) at pre-(T0) and mid-intervention (6-week; T6). Physical performance, body composition and muscle function were assessed pre-(T0) and post-(T12) intervention. PA behavior outcomes did not change between T0 and T6, except for METs which decreased by 0.2 METS (T0:1.44{+/-}0.34 vs. T6:1.25{+/-} 0.18; p=0.003 [13%]). At T6, day-to-day fluctuations were observed for PA behavior on Day-PT-1 and Day-PT+1 compared with Day-PT (all ps<0.05). Following the intervention, body composition and muscle characteristics improved significantly. Between T6-Day-PT-1 and T6-Day-PT, greater increases in time of PA were associated with lower Fast Timed Up and Go speed adaptation (p=0.02), and greater reductions in step count were associated with greater reductions in muscle power (p=0.02). Finally, increases in step count and time of PA were associated with greater upper limb strength (p=0.04) and muscle pennation angle (p=0.02). PA behavior appears modulated during a 12-week PT intervention in healthy older men. Thus, PA behavior surrounding training sessions could be an important compensatory factor contributing to adaptations variability.

physiology↗

Serum C-terminal agrin fragment as a biomarker of age-related neuromuscular decline in men: influence of physical activity

Aging is accompanied by progressive neuromuscular junction (NMJ) degeneration. The C-terminal agrin fragment (CAF), a circulating product of agrin cleavage, has been proposed as a minimally invasive biomarker of NMJ degradation, but its relationships with neuromuscular and functional characteristics, and the influence of physical activity, remain underexplored. We studied 136 community-dwelling men aged 20-92 years (active, n=87; inactive, n=49). Serum CAF was measured by ELISA. The proportion of NCAM-positive fibers, a marker of myofiber denervation, was assessed in vastus lateralis biopsies (n=127). Neuromuscular outcomes included maximal voluntary isometric contraction (MVIC), lower-limb power, electromechanical delay (EMD), nerve conduction velocities, H/M ratio, central activation ratio, co-activation, and twitch characteristics. Functional capacity was assessed using the 6-minute walk test, alternating step test, Timed Up and Go, sit-to-stand tests, and fast gait speed. Serum CAF increased with age and was positively associated with NCAM-positive fiber proportion. Higher CAF was associated with lower MVIC, lower-limb power and poorer performance on all functional tests. CAF was associated with longer EMD in the overall cohort and in inactive men only, and with a lower H/M ratio in inactive men. No associations were found with nerve conduction velocities, central activation ratio, co-activation, or twitch amplitude. Active men had lower CAF levels than inactive men, particularly after age 70. Serum CAF is associated with age-related declines in neuromuscular and functional capacity and with NCAM-positive fiber prevalence, supporting its utility as an accessible biomarker of NMJ remodeling. Physical activity was associated with a more favorable CAF profile in older men.

physiology↗

Impact of physical activity on physical performance, mitochondrial bioenergetics, ROS production and calcium handling across the human adult lifespan

Aging-related muscle atrophy and weakness contribute to loss of mobility, falls and disability. Mitochondrial dysfunction is widely considered a key contributing mechanism to muscle aging. However, mounting evidence position physical activity as a confounding factor, making unclear whether muscle mitochondria accumulate bona fide defects with aging. To disentangle aging from physical activity-related mitochondrial adaptations, we functionally profiled skeletal muscle mitochondria in 51 inactive and 88 active men aged 20-93. Physical activity status conferred partial protection against age-related decline in physical performance. A trend for reduced muscle mitochondrial respiration with aging was observed in inactive but not in active participants, indicating that aging per se does not alter mitochondrial respiratory capacity. Mitochondrial reactive oxygen species (ROS) production was unaffected by aging and active participants displayed higher ROS production. In contrast, mitochondrial calcium retention capacity decreased with aging regardless of physical activity status and correlated with muscle mass, performance and the stress-responsive metabokine GDF15. Targeting mitochondrial calcium handling may hold promise for treating aging-related muscle impairments.

cell biology↗