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Evaluating the Neural Underpinnings of Motivation for Walking Exercise

前额叶皮质 大脑活动与冥想 心理学 运动前皮质 背外侧前额叶皮质 物理医学与康复 额叶 等长运动 神经科学 认知 医学 物理疗法 脑电图 解剖
作者
Sarah Doren,Sarah M. Schwab,Kaitlyn Bigner,Jenna Calvelage,Katie Preston,Abigail Laughlin,Colin G. Drury,Brady Tincher,Daniel Carl,Oluwole O. Awosika,Pierce Boyne
出处
期刊:Physical therapy [Oxford University Press]
被引量:1
标识
DOI:10.1093/ptj/pzad159
摘要

Abstract Objective Motivation is critically important for rehabilitation, exercise, and motor performance, but its neural basis is poorly understood. Recent correlational research suggests that the dorsomedial prefrontal cortex (dmPFC) may be involved in motivation for walking activity and/or descending motor output. This study experimentally evaluated brain activity changes in periods of additional motivation during walking exercise, and tested how these brain activity changes relate to self-reported exercise motivation and walking speed. Methods Adults without disability (N = 26; 65% women; 25 [SD = 5] years old) performed a vigorous exercise experiment involving 20 trials of maximal speed overground walking. Half of the trials were randomized to include “extra-motivation” stimuli (lap timer, tracked best lap time, and verbal encouragement). Wearable near-infrared spectroscopy measured oxygenated hemoglobin responses from frontal lobe regions, including the dmPFC, primary sensorimotor, dorsolateral prefrontal, anterior prefrontal, supplementary motor, and dorsal premotor cortices. Results Compared with standard trials, participants walked faster during extra-motivation trials (2.43 vs 2.67 m/s; P < .0001) and had higher oxygenated hemoglobin responses in all tested brain regions, including dmPFC (+842 vs +1694 μM; P < .0001). Greater dmPFC activity was correlated with more self-determined motivation for exercise between individuals (r = 0.55; P = .004) and faster walking speed between trials (r = 0.18; P = .0002). dmPFC was the only tested brain region that showed both of these associations. Conclusions Simple motivational stimuli during walking exercise seem to upregulate widespread brain regions. Results suggest that dmPFC may be a key brain region linking affective signaling to motor output. Impact These findings provide a potential biologic basis for the benefits of motivational stimuli, elicited with clinically feasible methods during walking exercise. Future clinical studies could build on this information to develop prognostic biomarkers and test novel brain stimulation targets for enhancing exercise motivation (eg, dmPFC).
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