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Published on: August 22, 2014
Effect of simple motor exercise on motor adaptation in complex dynamic tasks: exploring age-related variations
Kimia Kiani1, Qiushi Fu1,2
1Mechanical and Aerospace Engineering, University of Central Florida, Orlando, Florida, United States.
None:
Dexterous manual actions rely on the integration of precise sensorimotor control and adaptive learning. However, it remains unclear how repetition of simple motor tasks influences subsequent adaptation to force perturbations in a dynamic manipulation task. This study examined whether different types of motor repetition, force-based or movement-based, affect the adaptation process in young and older adults. Sixty right-handed participants (30 young and 30 older) performed a dynamic manipulation task using a robotic interface, where they had to counteract perturbation torques during a handle-lifting movement. Before the perturbation trials, participants engaged in either force repetition, which required producing discrete isometric torque pulses, or movement repetition, which involved continuous wrist rotations. We found that young adults who performed force repetition exhibited enhanced adaptation in the dominant hand, whereas movement repetition did not yield the same benefit. However, older adults showed no significant modulation of adaptation based on repetition type. In addition, across all participants, adaptation performance differed between supination and pronation directions, with greater accuracy observed in the supination condition. This asymmetry was more pronounced in young adults and in the nondominant hand. These findings suggest that the benefits of force repetition for predictive motor control may depend on both age and limb dominance, with implications for motor training and rehabilitation strategies.NEW & NOTEWORTHY This research presents a novel approach to studying how motor repetition influences adaptation in dexterous manipulation. Departing from traditional reaching tasks, we used a dynamic manipulation paradigm where participants were adapting to dynamic perturbations after force- or movement-based repetition exercises. These tasks engaged predictive or feedback motor processes. Our design accounted for hand dominance and age-related differences, providing a comprehensive framework to investigate how prior motor experience shapes learning, adaptation, and transfer in hand control.
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