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A Novel Surgical Approach to Induce an Ankle Joint Contracture in Rats

  • Guido Geusebroek
  • , Jaap van Dieën
  • , Wendy Noort
  • , Giovanni Ramdin
  • , Han Houdijk
  • , Huub Maas*
  • *Corresponding author for this work

Research output: Contribution to JournalArticleAcademicpeer-review

Abstract

Our primary aim was to establish a novel surgical immobilization approach to induce a persistent ankle plantar-flexion contracture in the Wistar rat. A stainless steel suture was placed in experimental animals (n = 14) and pulled taut between the calcaneal bone and the knee joint, restricting dorsal-flexion while still allowing for limited ankle plantar-flexion, muscle activity, and loading. The immobilization method was well tolerated; adverse events were limited and manageable. After 4 weeks, immobilization was released by cutting the suture. After 4 weeks of immobilization, ankle angle at 5 Nmm passive torque shifted 48° towards plantar-flexion, plantar-flexion torque and stiffness at 55° ankle angle increased 4.5 and eightfold, respectively (n = 8). Exploratory tissue analyses ex-vivo revealed significant atrophy of the medial gastrocnemius muscle-belly (34% smaller mass than controls, n = 4). Ankle angle at 5 Nmm, torque, and stiffness at 55° angle showed no signs of recovery 4 weeks post-release of the immobilization (n = 3). Morphological and mechanical assessments at this timepoint revealed persistent medial-gastrocnemius atrophy (19% smaller mass and 30% lower distal-tendon length in experimental animals (n = 3) compared to controls, n = 4). Also, passive and active length-force relationships of medial gastrocnemius were shifted towards lower lengths (i.e., plantar-flexion) compared to controls. Taken together, our novel surgical approach elicits an ankle plantar-flexion contracture that appears to persist for at least 4 weeks, providing a window for an intervention study. This model may be used to improve our understanding of the biomechanical, morphological and neurological changes following joint contractures, and to evaluate therapeutic interventions.

Original languageEnglish
Article numbere70228
Pages (from-to)1-13
Number of pages13
JournalJournal of Orthopaedic Research
Volume44
Issue number6
Early online date24 May 2026
DOIs
Publication statusPublished - Jun 2026

Bibliographical note

Publisher Copyright:
© 2026 The Author(s). Journal of Orthopaedic Research® published by Wiley Periodicals LLC on behalf of Orthopaedic Research Society.

Keywords

  • ankle
  • biomechanics
  • contracture
  • joint
  • muscle
  • rat model

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