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Journal Article

Motor sequences; separating the sequence from the motor. A longitudinal rsfMRI study

Anna-Thekla P. Jäger; Julia M. Huntenburg; Stefanie A. Tremblay; Uta Schneider; Sophia Grahl; Julia Huck; Christine L. Tardif; Arno Villringer; Claudine J. Gauthier; Pierre-Louis Bazin; Christopher J. Steele
Brain Structure and Function · Vol. 227, Issue 3 · pp. 793-807 · 2022

Abstract

In motor learning, sequence specificity, i.e. the learning of specific sequential associations, has predominantly been studied using task-based fMRI paradigms. However, offline changes in resting state functional connectivity after sequence-specific motor learning are less well understood. Previous research has established that plastic changes following motor learning can be divided into stages including fast learning, slow learning and retention. A description of how resting state functional connectivity after sequence-specific motor sequence learning (MSL) develops across these stages is missing. This study aimed to identify plastic alterations in whole-brain functional connectivity after learning a complex motor sequence by contrasting an active group who learned a complex sequence with a control group who performed a control task matched for motor execution. Resting state fMRI and behavioural performance were collected in both groups over the course of 5 consecutive training days and at follow-up after 12 days to encompass fast learning, slow learning, overall learning and retention. Between-group interaction analyses showed sequence-specific decreases in functional connectivity during overall learning in the right supplementary motor area (SMA). We found that connectivity changes in a key region of the motor network, the superior parietal cortex (SPC) were not a result of sequence-specific learning but were instead linked to motor execution. Our study confirms the sequence-specific role of SMA that has previously been identified in online task-based learning studies, and extends it to resting state network changes after sequence-specific MSL.

Bibliographic Information

JournalBrain Structure and Function
PublisherSpringer
Publication Date2022-04-01
Publication Year2022
Volume227
Issue3
Pages793-807
Document TypeJournal Article
eISSN1863-2661
DOI10.1007/s00429-021-02412-7

Access Information

NARA Access Coverage1891-01-01~Current
Journal Homepagehttps://www.springer.com/journal/429
Publisher PageOpen Publisher Page
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