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  3. Biomechanical Analysis of Standard Locking Compression Plate versus Dual Minifragment Locking Plates in Ulna Shaft Fracture Fixation: A Human Cadaveric Study.

Biomechanical Analysis of Standard Locking Compression Plate versus Dual Minifragment Locking Plates in Ulna Shaft Fracture Fixation: A Human Cadaveric Study.

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DOI
10.48620/97834
Publisher DOI
10.1016/j.jhsa.2026.02.025
PubMed ID
42033430
Abstract
Purpose
The main postoperative complications after fixation of ulna shaft fractures are nonunion and soft tissue irritation. Current standards recommend 3.5 mm locking compression plates, which are prone to cause soft tissue irritation, necessitating secondary implant removal in approximately 25% of cases. Therefore, an alternative approach considering a combination of two minifragment locking plates has been proposed. The aim of this study was to biomechanically compare a single 3.5 mm locking compression plate fixation versus dual minifragment locked plating of ulna shaft fractures in a human cadaveric model.
Methods
Sixteen paired human cadaveric ulnae with a standardized 10-mm simulated fracture gap were fixed either via dual minifragment locked plating using a 2.5 and a 2.0 mm plates placed orthogonally onto the medial and posterolateral surface of the ulna, or with a single 3.5 mm locking compression plate placed medially. Biomechanical testing included nondestructive quasistatic axial, torsional, and bending loading, followed by cyclic torsional loading to failure in external rotation simulating supination, with monitoring of the interfragmentary movements via motion tracking.
Result
No significant differences between the two plating techniques were detected for axial stiffness, torsional stiffness in supination and pronation, bending stiffness in varus and valgus, as well as posterior and anterior bending stiffness, P ≥ .094. Under cyclic loading over 2,000 cycles, dual minifragment locked plating demonstrated overall significantly bigger angular displacement versus single locked plating, P ≤ .018. However, no significant differences were registered between the two fixation techniques for overall shear displacement across the fracture gap over 2,000 cycles, P ≥ .312. Number of cycles until catastrophic failure was not significantly different between the techniques, P = .203. All constructs treated with both plating methods failed because of bone breakage at the most distal screw.
Conclusion
From a biomechanical perspective, a dual minifragment construct implementing a 2.5 mm and a 2.0 mm locking plates offers comparable stability for fixation of ulna shaft fractures versus 3.5 mm single locked plating, featuring similar stiffness and shear displacement at the fracture site under torsional loading.
Clinical Relevance
Dual minifragment locked plating offers biomechanical stability comparable to to that of a standard 3.5 mm plate fixation of ulna shaft fractures, making it a potential alternative to the latter that may minimize soft tissue irritation; however, clinical research is necessary to confirm its efficacy and safety in vivo.
Date Issued
2026-04-24
Publication Type
Article
Subject(s)
600 Technology > 610 Medicine & health
Subjects
Biomechanical testing
•
human cadaveric study
•
locking plate fixation
•
motion tracking
•
ulna shaft fractures
Language(s)
en
Author(s)
Kraus, Moritz
van Rossenberg, Luke
Zderic, Ivan
Pastor, Tatjana  
Clinic of Plastic and Hand Surgery, Hand Surgery and Peripheral Nerve Surgery  
Gueorguiev, Boyko
Richards, R Geoff
Breckwoldt, Tabea Katharina
Pape, Hans-Christoph
Beeres, Frank J P
Pastor, Torsten
Additional Credits
Clinic of Plastic and Hand Surgery, Hand Surgery and Peripheral Nerve Surgery  
Clinic of Plastic and Hand Surgery  
Journal
The Journal of Hand Surgery
Publisher
Elsevier
ISSN
1531-6564
0363-5023
Access(Rights)
open.access
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