Bidirectional locomotion induces unilateral limb adaptations
Hardesty, R. L.; Motjabavi, H.; Gemoets, D. E.; Wolpaw, J. R. L.
Show abstract
Humans can acquire and maintain motor skills throughout their lives through motor learning. Motor learning and skill acquisition are essential for rehabilitation following neurological disease or injury. Adaptation, the initial stage of motor learning, involves short-term changes in motor performance in response to a new demand in the persons environment. Repeated adaptation can improve skill performance and result in long-term skill retention. Locomotor adaptation is extensively studied using split-belt treadmill paradigms. In this study we explored whether bidirectional walking (BDW) on a split-belt treadmill can induce short-term gait adaptations. Twelve healthy volunteers participated in our single session, starting with 2 minutes of normal walking (NW), followed by four 5-minute blocks of BDW with a 1-minute passive rest in between blocks, and ending with another 2-minute of NW. We recorded body kinematics and ground reaction forces throughout the experiment. Participants quickly adapted to BDW with both legs showing decreased step lengths. However, only the backward-walking leg exhibited aftereffects upon returning to NW, indicating short-term adaptation. Notable kinematic changes were observed, particularly in hip extension and pelvis tilt, though these varied among participants. Our findings suggest that BDW induces unilateral adaptations despite bilateral changes in gait, offering new insights into locomotor control and spinal CPG organization. Key PointsO_LILocomotor adaptation extensively studied using split-belt treadmill paradigms with asymmetric belt speeds. C_LIO_LIThis study examined whether bidirectional walking, i.e. walking with each leg stepping in opposite directions, would induce short-term adaptations in spatiotemporal characteristics of gait. C_LIO_LIVolunteers performed bidirectional walking with bilateral changes in step length. C_LIO_LIDespite equal but opposite belt speeds, volunteers exhibited a unilateral aftereffect of decreased step length in the leg which performed backwards stepping during bidirectional walking. C_LI
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Using asymmetry to your advantage: learning to acquire and accept external assistance during prolonged split-belt walking 98%
- Changes in Gait Asymmetry May Be Caused by Adaptation of Spinal Reflexes 96%
- Augmenting cognitive load during split-belt walking increases the generalization of motor memories across walking contexts 96%
Similar papers in this journal
Similar papers in this journal
- Humans optimally anticipate and compensate for an uneven step during walking 96%
- Operation of spinal sensorimotor circuits controlling phase durations during tied-belt and split-belt locomotion after a lateral thoracic hemisection 96%
- Optimization of energy and time determines dynamic speeds for human walking 95%
Similar papers in this journal
- Vertebral level specific modulation of paraspinal muscle activity based on vestibular signals during walking. 96%
- Effects Of Spinal Transection And Locomotor Speed On Muscle Synergies Of The Cat Hindlimb 96%
- Role Of Forelimb Morphology In Muscle Sensorimotor Functions During Locomotion In The Cat 96%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.