Related Experiment Video
Updated: Sep 5, 2026

Lower Limb Biomechanical Analysis of Healthy Participants
Published on: April 15, 2020
Biomechanical Contributions to Alterations in Peak Metabolic Capacity and Efficiency Following Locomotor Training in
T George Hornby1,2, Abbey Plawecki1, Jennifer K Lotter3
1Department of Physical Medicine and Rehabilitation, Indiana University School of Medicine, Indianapolis IN, United States.
Importance:
Changes in peak metabolic capacity (Vo2peak) and gait efficiency at matched speeds (Vo2match) are often observed in individuals after stroke following locomotor training, although it is uncertain how those changes are achieved.
Objective:
The objective of this study was to evaluate the effects of locomotor training on changes in Vo2peak and Vo2match in individuals after stroke and their associations with changes in locomotor kinematics and kinetics.
Design:
This study was a secondary analysis of a randomized trial.
Setting:
The setting was an outpatient clinic/laboratory.
Participants:
Participants were individuals >6 months after stroke with self-selected walking speeds of <1.0 m/s with assistive devices and ankle-foot orthoses as needed.
Interventions:
Participants were randomized to receive ≤30 sessions of locomotor training at higher intensities (>70% of heart rate reserve) either in variable contexts (multiple tasks/environments) or during forward walking (treadmill/overground) or at lower intensities (<40% of heart rate reserve) in variable contexts.
Main Outcomes And Measures:
As changes in Vo2match masked gains in Vo2peak, both measures were evaluated during graded exercise tests and their difference calculated (Vo2gain), with subsequent determination of associations with changes in locomotor kinematics and kinetics. Between-group differences in changes in metabolic and biomechanical outcomes were evaluated using 1-way analyses of variance, with subsequent correlation and stepwise regression analyses.
Results:
Data from 45 participants with baseline and posttraining data indicated no between-group differences in changes in Vo2peak or Vo2match. However, larger changes in Vo2gain were observed following either higher-intensity paradigm, consistent with faster treadmill speeds. Correlation and regression analyses revealed limited associations with changes in Vo2peak, with greater associations between Vo2gain and selected spatiotemporal parameters, joint kinematics, and nonparetic joint powers. Conversely, changes in Vo2match were associated primarily with paretic ankle powers.
Conclusions:
High-intensity training resulted in significant improvements in Vo2gain, which were related to improvements in multiple biomechanical variables at higher treadmill speeds, while gains in gait efficiency were related to improved paretic limb power.
Relevance:
Alterations in peak metabolic capacity and efficiency are associated with distinct biomechanical changes.

