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Disrupting Motor Cortical Regional Activity during Motor Sequence Skill Training Impairs Human Motor Visuomotor Skill
Iran Gutierrez1, Oindrila Sinha2, Nathan Baune3
1Department of Rehabilitation Medicine, Emory University, Atlanta, Georgia 30322 imgutie@emory.edu mborich@emory.edu.
None:
Implicit sequence and visuomotor skill learning is important for successful goal-directed behavior in everyday tasks. However, prior research has primarily relied on correlational methods to investigate the underlying neural mechanisms of sequence and visuomotor skill learning. To evaluate the necessary contributions of different motor cortical regions to both types of skill learning, we enrolled 62 neurotypical adults (41 females, 21 males) and delivered spatiotemporally resolved single-pulse transcranial magnetic stimulation (TMS) over either the premotor cortex (PMC) or primary motor cortex (M1) to transiently disrupt activity while participants practiced an implicit motor sequence task. We hypothesized that (1) PMC disruption would preferentially reduce sequence-specific skill acquisition (Experiment 1) and retention (Experiment 2), while (2) M1 disruption would diminish visuomotor skill acquisition and retention but not sequence learning. Our results demonstrated that TMS-based interference over both M1 and PMC did not disrupt implicit sequence-specific motor skill learning after training; however, it did disrupt visuomotor skill acquisition and total learning that was not sequence-specific. Furthermore, disruption of PMC activity had a greater effect on reducing visuomotor skill learning than M1 supporting a potentially distinct role of the PMC in the early stages of skill learning.

