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August 25, 2025Frontiers in Veterinary Science0 citationsOpen Access

Biomechanical comparison of locking plate and pin-tension band wiring fixation for 3D-printed canine patellar fracture repair

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SJSung-Weon JungHKHwi‐Yool Kim

Key Points

  • Locking plate fixation demonstrated significantly superior biomechanical stability in canine patellar fractures, reducing displacement during tensile testing.
  • Group 1 with pin/TBW fixation showed higher displacement with loads over 1 mm, reaching up to 342.7 N, while groups with locking plates had over 500 N strength.
  • Assessment involved 30 canine patellar fracture models tested under controlled tensile conditions to simulate real-world stress.
  • These findings suggest locking plate systems could be a reliable option for patellar fracture stabilization in veterinary practices.

Abstract

Introduction The conventional pin and tension band wiring (TBW) technique remains the standard for fixation, but is frequently associated with complications such as wire breakage, loosening, and delayed healing in patellar fracture. Locking plate fixation has demonstrated superior biomechanical stability in human studies. This study aimed to compare the biomechanical performance of locking plate fixation versus TBW in canine transverse patellar fractures and to evaluate the influence of plate design on fixation strength. Methods Thirty 3D-printed canine patellar fracture models were fabricated based on CT data from a 45 kg Akita dog and allocated into three groups ( n = 10 per group): Group 1—pin/TBW fixation, Group 2—2-hole locking plate fixation, Group 3—4-hole locking plate fixation. All models were subjected to tensile testing at a 135° stifle angle to simulate quadriceps force. Fixation failure was defined as a fracture gap displacement greater than 2 mm or structural yielding. Results Group 1 showed progressive displacement with increasing tensile load (1 mm: 226.4 ± 26.2 N; 2 mm: 280.8 ± 27.7 N; 3 mm: 342.7 ± 27.0 N). Groups 2 and 3 exhibited less than 1 mm displacement and significantly higher maximum failure loads (Group 2: 505.6 ± 66.6 N; Group 3: 556.9 ± 39.6 N; p 0.05). No significant difference was observed between the 2-hole and 4-hole plate groups. Discussion Locking plate fixation demonstrated significantly superior biomechanical stability compared to the traditional pin/TBW technique in a canine transverse patellar fracture model. The comparable performance of the smaller 2-hole locking plate suggests its potential utility in clinical applications, particularly for small-breed dogs. These findings support the clinical applicability of locking plate systems as a reliable alternative for patellar fracture stabilization in veterinary practice.

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Cite This Study

Jung et al. (2025) studied this question.

synapsesocial.com/papers/68af5f13ad7bf08b1eae1e19https://doi.org/10.3389/fvets.2025.1639433
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