4.2 Article

Magnified visual feedback exacerbates positional variability in older adults due to altered modulation of the primary agonist muscle

Journal

EXPERIMENTAL BRAIN RESEARCH
Volume 222, Issue 4, Pages 355-364

Publisher

SPRINGER
DOI: 10.1007/s00221-012-3219-0

Keywords

Aging; Visual feedback; Visual gain; EMG; Motor control

Categories

Funding

  1. NIH [R01 AG031769]

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The purpose of this study was to determine whether magnified visual feedback during position-holding contractions exacerbates the age-associated differences in motor output variability due to changes in the neural activation of the agonist muscle in the upper and lower limb. Twelve young (18-35 years) and ten older adults (65-85 years) were instructed to accurately match a target position at 5A degrees of index finger abduction and ankle dorsiflexion while lifting 10 % of their 1 repetition maximum (1RM) load. Position was maintained at three different visual angles (0.1A degrees, 1A degrees, and 4A degrees) that varied across trials. Each trial lasted 25 s and visual feedback of position was removed from 15 to 25 s. Positional error was quantified as the root mean square error (RMSE) of the subject's performance from the target. Positional variability was quantified as the standard deviation of the position data. The neural activation of the first dorsal interosseus and tibialis anterior was measured with surface electromyography (EMG). Older adults were less accurate compared with young adults and the RMSE decreased significantly with an increase in visual gain. As expected, and independent of limb, older adults exhibited significantly greater positional variability compared with young adults that was exacerbated with magnification of visual feedback (1A degrees and 4A degrees). This increase in variability at the highest magnification of visual feedback was predicted by a decrease in power from 12 to 30 Hz of the agonist EMG signal. These findings demonstrate that motor control in older adults is impaired by magnified visual feedback during positional tasks.

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