Changes in Movement Control Processes Following Visuomotor Adaptation

被引:1
|
作者
Wijeyaratnam, Darrin O. [1 ]
Chua, Romeo [2 ]
Cressman, Erin K. [1 ]
机构
[1] Univ Ottawa, Sch Human Kinet, 125 Univ Private,Room 360, Ottawa, ON K1N 6N5, Canada
[2] Univ British Columbia, Sch Kinesiol, Vancouver, BC, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
reaching; visuomotor adaptation; learning; movement control; movement time; temporal constraints; VISUAL FEEDBACK; SENSORIMOTOR ADAPTATION; SENSORY PREDICTION; ACCURACY; ONLINE; VARIABILITY; EXPLICIT; INDEPENDENCE; KINEMATICS; ROTATIONS;
D O I
10.1080/00222895.2021.1921687
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Goal-directed reaches are modified based on previous errors experienced (i.e., offline control) and current errors experienced during movement execution (i.e., online control). It is well documented that the control processes (i.e., offline and online control) underlying well learned movements change based on the time available to complete an action, such that offline control processes are engaged to a greater extent when movements are completed in a faster movement time (MT). Here, we asked if the underlying movement control processes governing newly acquired movements also change under varying MT constraints. Sixteen participants adapted their movements to a visuomotor distortion. Following reach training trials, participants reached under Long (800-1000 ms) and Short (400-500 ms) MT constraints. Results indicate that movement errors when reaching with the rotated cursor were reduced online under the Long MT constraint compared to the Short MT constraint. Thus, the contributions of offline and online movement control processes engaged in newly acquired movements can be adjusted with changes in temporal demands.
引用
收藏
页码:113 / 124
页数:12
相关论文
共 50 条
  • [1] Influence of movement kinematics on visuomotor adaptation
    Simon, Anja
    Bock, Otmar
    [J]. EXPERIMENTAL BRAIN RESEARCH, 2016, 234 (11) : 3083 - 3090
  • [2] Influence of movement kinematics on visuomotor adaptation
    Anja Simon
    Otmar Bock
    [J]. Experimental Brain Research, 2016, 234 : 3083 - 3090
  • [3] Adaptation to proprioceptive targets following visuomotor adaptation
    Jenna C. Flannigan
    Ruth J. Posthuma
    Jesse N. Lombardo
    Chelsea Murray
    Erin K. Cressman
    [J]. Experimental Brain Research, 2018, 236 : 419 - 432
  • [4] Adaptation to proprioceptive targets following visuomotor adaptation
    Flannigan, Jenna C.
    Posthuma, Ruth J.
    Lombardo, Jesse N.
    Murray, Chelsea
    Cressman, Erin K.
    [J]. EXPERIMENTAL BRAIN RESEARCH, 2018, 236 (02) : 419 - 432
  • [5] Adaptation to Visuomotor Rotation in Isometric Reaching is Similar to Movement Adaptation
    Rotella, Michele F.
    Koehler, Margaret
    Nisky, Ilana
    Bastian, Amy J.
    Okamura, Allison M.
    [J]. 2013 IEEE 13TH INTERNATIONAL CONFERENCE ON REHABILITATION ROBOTICS (ICORR), 2013,
  • [6] Persistence of adaptation following visuomotor training
    Ebrahimi, Shahryar
    Ostry, David J.
    [J]. JOURNAL OF NEUROPHYSIOLOGY, 2022, 128 (05) : 1312 - 1323
  • [7] Differential transfer processes in incremental visuomotor adaptation
    Seidler, RD
    [J]. MOTOR CONTROL, 2005, 9 (01) : 40 - 58
  • [8] Assessing and defining explicit processes in visuomotor adaptation
    Heirani Moghaddam, S.
    Chua, R.
    Cressman, E. K.
    [J]. EXPERIMENTAL BRAIN RESEARCH, 2021, 239 (07) : 2025 - 2041
  • [9] Assessing and defining explicit processes in visuomotor adaptation
    S. Heirani Moghaddam
    R. Chua
    E. K. Cressman
    [J]. Experimental Brain Research, 2021, 239 : 2025 - 2041
  • [10] Retention of proprioceptive recalibration following visuomotor adaptation
    Nilufer Nourouzpour
    Danielle Salomonczyk
    Erin K. Cressman
    Denise Y. P. Henriques
    [J]. Experimental Brain Research, 2015, 233 : 1019 - 1029