Task-Relevant Cognitive Load Modulates Fast and Slow Processes Underlying Motor Adaptation

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Abstract

How cognitive control influences the correction of motor errors is an important question. In this study, we examined how the slow and fast processes that constitute motor adaptation are modulated by cognitive load. To address this question, we used a novel approach that differed from traditional dual-task experiments that have assessed the role of fast processes by decreasing attention to the motor adaptation task. Here, cognitive load was manipulated using a decision-making task with easy and hard difficulty levels, while simultaneously adapting to a perturbation and maintaining attention on the task. Our results showed that the hard decision-making task increased cognitive load relative to the easy task, resulting in attenuated steady-state learning. The relative contributions of the fast and slow components were assessed using a dual state-space model, which showed that the former was larger under the high-load condition, whereas the latter was larger under the easy-load condition, consistent with a competition model in which a shared error signal is partitioned between the two processes. We also showed that the effect of cognitive load on fast processes was not attributable to increased reaction times or task performance. Taken together, these results support the notion that faster explicit motor adaptation processes derive from cognitive processes involved in action selection.

NEW AND NOTEWORTHY

Prior dual-task studies examining the effect of cognitive load on motor learning have shown that the faster explicit process is negatively affected by higher load. We have shown that when attention and cognitive load are not divided between two tasks but instead focused on the motor task, the effect is reversed, and the expression of the faster explicit process is boosted. Interestingly, the greater expression of the faster explicit process did not lead to greater adaptation in the learning phase, consistent with the notion that the slower implicit and faster explicit processes are also yoked to a common error.

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