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Updated: Aug 17, 2026

Adjustable Stiffness, External Fixator for the Rat Femur Osteotomy and Segmental Bone Defect Models
Published on: October 9, 2014
Is diamond-shaped screw fixation a viable alternative for Pauwels type III fractures? A biomechanical comparison of
Emre Meriç1, Serkan Bayram1, Emre Kocazeybek2
1Department of Orthopedics and Traumatology, Faculty of Medicine, Istanbul University Istanbul, Çapa Fatih, Istanbul, 34093, Turkey.
Background:
Pauwels type III femoral neck fractures are characterized by steep, vertically oriented fracture lines and are biomechanically unstable due to high shear and varus forces. While sliding hip screws (SHS) and cannulated screw (CS) constructs are commonly used, no consensus exists regarding the optimal fixation method for these challenging fractures. The diamond-shaped (rhomboid) configuration, incorporating four cannulated screws placed in both superior-inferior and anterior-posterior axes, has been proposed as a potential alternative, but remains insufficiently studied.
Methods:
In this biomechanical study, 24 synthetic femur models with standardized Pauwels type III osteotomies were randomly assigned to three fixation groups (n = 8): inverted triangle cannulated screws (ICS), SHS with an anti-rotational screw (SHS + AS), and diamond-shaped cannulated screws (DCS). All models underwent static, dynamic (cyclic), and failure load testing using an Instron biomechanical testing system. Displacement at the fracture site was evaluated using a digital image correlation (DIC) method.
Results:
The DCS group demonstrated the highest mean failure load and superior stiffness in both static and post-cyclic testing. Additionally, shear displacement was significantly lower in the DCS group during static loading compared to the SHS + AS group (p < 0.05). No significant differences were found between ICS and SHS + AS groups in most parameters.
Conclusion:
The diamond-shaped cannulated screw configuration exhibited promising biomechanical performance in Pauwels type III fractures, offering enhanced resistance to shear forces. Considering the minimally invasive nature of CS fixation, this configuration may serve as a viable alternative to conventional methods. Further studies are needed to validate these findings in cadaveric and clinical settings.
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