scholarly journals The aging neuromuscular system and motor performance

2016 ◽  
Vol 121 (4) ◽  
pp. 982-995 ◽  
Author(s):  
Sandra K. Hunter ◽  
Hugo M. Pereira ◽  
Kevin G. Keenan

Age-related changes in the basic functional unit of the neuromuscular system, the motor unit, and its neural inputs have a profound effect on motor function, especially among the expanding number of old (older than ∼60 yr) and very old (older than ∼80 yr) adults. This review presents evidence that age-related changes in motor unit morphology and properties lead to impaired motor performance that includes 1) reduced maximal strength and power, slower contractile velocity, and increased fatigability; and 2) increased variability during and between motor tasks, including decreased force steadiness and increased variability of contraction velocity and torque over repeat contractions. The age-related increase in variability of motor performance with aging appears to involve reduced and more variable synaptic inputs that drive motor neuron activation, fewer and larger motor units, less stable neuromuscular junctions, lower and more variable motor unit action potential discharge rates, and smaller and slower skeletal muscle fibers that coexpress different myosin heavy chain isoforms in the muscle of older adults. Physical activity may modify motor unit properties and function in old men and women, although the effects on variability of motor performance are largely unknown. Many studies are of cross-sectional design, so there is a tremendous opportunity to perform high-impact and longitudinal studies along the continuum of aging that determine 1) the influence and cause of the increased variability with aging on functional performance tasks, and 2) whether lifestyle factors such as physical exercise can minimize this age-related variability in motor performance in the rapidly expanding numbers of very old adults.

2008 ◽  
Vol 130 (2) ◽  
Author(s):  
K. L. Goh ◽  
D. F. Holmes ◽  
H.-Y. Lu ◽  
S. Richardson ◽  
K. E. Kadler ◽  
...  

Connective tissues are biological composites comprising of collagen fibrils embedded in (and reinforcing) the hydrated proteoglycan-rich (PG) gel within the extracellular matrices (ECMs). Age-related changes to the mechanical properties of tissues are often associated with changes to the structure of the ECM, namely, fibril diameter. However, quantitative attempts to correlate fibril diameter to mechanical properties have yielded inconclusive evidence. Here, we described a novel approach that was based on the rule of mixtures for fiber composites to evaluate the dependence of age-related changes in tendon tensile strength (σ) and stiffness (E) on the collagen fibril cross-sectional area fraction (ρ), which is related to the fibril volume fraction. Tail tendons from C57BL6 mice from age groups 1.6–35.3months old were stretched to failure to determine σ and E. Parallel measurements of ρ as a function of age were made using transmission electron microscopy. Mathematical models (rule of mixtures) of fibrils reinforcing a PG gel in tendons were used to investigate the influence of ρ on ageing changes in σ and E. The magnitudes of σ, E, and ρ increased rapidly from 1.6monthsto4.0months (P-values <0.05) before reaching a constant (age independent) from 4.0monthsto29.0months (P-values >0.05); this trend continued for E and ρ (P-values >0.05) from 29.0monthsto35.3months, but not for σ, which decreased gradually (P-values <0.05). Linear regression analysis revealed that age-related changes in σ and E correlated positively to ρ (P-values <0.05). Collagen fibril cross-sectional area fraction ρ is a significant predictor of ageing changes in σ and E in the tail tendons of C57BL6 mice.


2010 ◽  
Vol 6 ◽  
pp. S40-S40
Author(s):  
Olof E. Lindberg ◽  
Carl-Henrik Ehrenkrona ◽  
Linnea Engström ◽  
Leif A. Svensson ◽  
Eva Öhrndahl ◽  
...  

1994 ◽  
Vol 29 (5) ◽  
pp. 531-541 ◽  
Author(s):  
Anders Wikby ◽  
Boo Johansson ◽  
Frederick Ferguson ◽  
Jadwiga Olsson

Author(s):  
William D. Hopkins ◽  
Mary C. Mareno ◽  
Sarah J. Neal Webb ◽  
Steven J. Schapiro ◽  
Mary A. Raghanti ◽  
...  

Author(s):  
Jonathon W. Senefeld ◽  
Sandra K. Hunter

Human aging particularly after ∼70 years, is associated with declines in physical function and athletic performance, that are accelerated in part by age-associated declines in physical activity and exercise training. Because elite athletes maintain high levels of physical activity across the lifespan, older athletes (Masters) may present as a proxy for healthy human aging. Although longitudinal studies are most informative about human aging, there are substantial practical challenges to conducting longitudinally designed research. Masters athletic records and comparisons of performance across age groups can serve as a practical and unique probe to predict the trajectory of human function throughout the lifespan. While useful, the cross-sectional comparison of elite athletic performance across different age groups, however, has inherent limitations in predicting healthy human aging, particularly among women. This review presents evidence that (1) there is a progressive age-related decline in world class performances in freestyle swim swimming, marathon, and triathlon, that accelerates into very old age (∼70 years), and (2) lower participation rates of women relative to men results in an overestimation of the age-related decline in athletic performance particularly in very old women. Thus, while useful, there are some limitations to predicting biological aging among women using current Masters Athletic performances.


2010 ◽  
Vol 121 ◽  
pp. S176
Author(s):  
J.P. van Dijk ◽  
C. Verhamme ◽  
I.N. van Schaik ◽  
H.J. Schelhaas ◽  
E. Mans ◽  
...  

2012 ◽  
Vol 19 (4) ◽  
pp. 287-298 ◽  
Author(s):  
Isabel Pavão Martins ◽  
Carolina Maruta ◽  
Cláudia Silva ◽  
Pedro Rodrigues ◽  
Catarina Chester ◽  
...  

2010 ◽  
Vol 4 (3-4) ◽  
pp. 220-231 ◽  
Author(s):  
Melissa Lopez-Larson ◽  
Janis L. Breeze ◽  
David N. Kennedy ◽  
Steven M. Hodge ◽  
Lena Tang ◽  
...  

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