Journal of Sports Science and Medicine
Journal of Sports Science and Medicine
ISSN: 1303 - 2968   
Ios-APP Journal of Sports Science and Medicine
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©Journal of Sports Science and Medicine ( 2026 )  25 ,  753  -  760   DOI: https://doi.org/10.52082/jssm.2026.753

Research article
Inter-Segmental Timing as A Contributing Factor to Knee Loading in Stop-Jump Landings
Cedric Schwartz1, , Julien Paulus1, Jean-Louis Croisier1,2, Laura Delhauteur1, Etienne Dubois1, Jean-François Kaux2,3
Author Information
1 LAM-Motion Lab, University of Liège, Liège, Belgium
2 Department of Physical Activity and Rehabilitation Sciences, University of Liège, Liège, Belgium
3 Physical Medicine and Sport Traumatology Department, University Hospital of Liège, Liège, Belgium

Cedric Schwartz
✉ LAM-Motion Lab, University of Liège, Liège, Belgium
Email: cedric.schwartz@uliege.be
Publish Date
Received: 21-04-2026
Accepted: 07-08-2026
Published (online): 01-09-2026
Narrated in English
 
 
ABSTRACT

Landing tasks are a major contributor to knee injuries in sport. While biomechanical determinants of knee joint loading have already been studied, less attention has been given to the role of inter-segmental timing during sport-specific landings. This study aimed to examine both biomechanical and temporal predictors of knee joint loading during horizontal and vertical phases of stop-jump landings. Thirty-three male volleyball and basketball players performed stop-jump tasks while lower-limb kinematics, kinetics, patellar tendon forces, and anterior tibial shear forces were calculated. Statistical Parametric Mapping and Linear Mixed Models were used to identify phase-specific differences and predictors of knee loading. Inter-segmental timing, quantified as foot-contact delay between body segments, emerged as a significant predictor of knee joint loading across conditions. This finding extends previous work by highlighting inter-segmental timing as an additional factor influencing knee joint loading alongside established biomechanical predictors such as displacement velocity, body mass, and knee range of motion. Horizontal landing phases showed a stiffer strategy compared to vertical phases, with reduced joint range of motion (40–83%) and increased knee valgus. These differences were associated with higher anterior tibial shear (121%) and patellar tendon (156%) forces. These results may be particularly relevant in sport situations where landings are not fully planned and can be altered by external perturbations such as opponents’ deceiving actions.

Key words: LCA, patellar tendinopathy, knee, biomechanics


           Key Points
  • Inter-segmental timing appears as a significant predictor of knee joint loading during landing.
  • Significant higher anterior tibial shear and patellar tendon forces occur during horizontal landing.
  • Horizontal landing phases showed a stiffer landing strategy than vertical ones.
 
 
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