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Related Experiment Video

Updated: Jan 6, 2026

Asymmetric Walkway: A Novel Behavioral Assay for Studying Asymmetric Locomotion
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Bidirectional locomotion induces asymmetric limb adaptations.

Russell L Hardesty1,2, Helia Mojtabavi1,2, Darren E Gemoets2

  • 1National Center for Adaptive Neurotechnologies (NCAN), Albany, New York, United States.

Journal of Neurophysiology
|October 30, 2025
PubMed
Summary

Bidirectional walking on a split-belt treadmill rapidly induces short-term gait adaptations in spatial and temporal parameters. These motor learning effects, particularly in the backward-walking limb, persist after returning to forward walking.

Keywords:
learninglocomotionmotor controlplasticityrehabilitation

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Using a Split-belt Treadmill to Evaluate Generalization of Human Locomotor Adaptation
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Area of Science:

  • Neuroscience
  • Biomechanics
  • Motor Control

Background:

  • Motor learning enables lifelong skill acquisition, crucial for neurological rehabilitation.
  • Locomotor adaptation, a key component of motor learning, is often studied using split-belt treadmills.
  • Bidirectional walking (BDW) presents a novel paradigm for studying gait adaptation.

Purpose of the Study:

  • To investigate if bidirectional walking (BDW) on a split-belt treadmill can induce short-term gait adaptations.
  • To characterize the spatiotemporal gait modifications during BDW.
  • To examine the persistence of these adaptations after returning to forward walking.

Main Methods:

  • Twelve healthy volunteers performed a single session involving forward walking (FW) and blocks of BDW on a split-belt treadmill.
  • Body kinematics and ground reaction forces were recorded throughout the experiment.
  • Gait parameters including step length, stance/swing timing, and interlimb phasing were analyzed.

Main Results:

  • Participants rapidly adapted gait during BDW, modifying spatial (step length) and temporal (phasing, stance duration) parameters.
  • Adaptations included bilateral step length reduction and altered timing in stance and swing phases.
  • Only the backward-walking limb showed persistent aftereffects upon return to FW, demonstrating short-term motor learning.

Conclusions:

  • Bidirectional walking effectively elicits spatiotemporal gait adaptations, validating it as a complementary research paradigm.
  • These findings highlight BDW's potential for investigating locomotor adaptation and motor learning mechanisms.
  • The study provides novel insights into gait adjustments and motor learning dynamics during complex walking tasks.