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Published on: April 11, 2018
A method to investigate the biomechanical alterations in Perthes' disease by hip joint contact modeling
Remel Alingalan Salmingo1, Tina Lercke Skytte2, Marie Sand Traberg3
1Biomedical Engineering, Department of Electrical Engineering/JJ X-Ray A/S Scion-DTU, Technical University of Denmark, 2800 Kongens Lyngby, Denmark. E-mails: rasal@elektro.dtu.dk, remel.salmingo@frontier.hokudai.ac.jp.
Insights
Finite element (FE) modeling using MRI revealed elevated stress and contact pressure in children with Perthes' disease. This patient-specific approach aids in understanding biomechanical changes for surgical planning.
Area of Science:
- Orthopedics
- Biomechanical Engineering
- Medical Imaging
Background:
- Perthes' disease causes femoral head malformation in children.
- Morphological changes are well-studied, but biomechanical effects require further elucidation.
Purpose of the Study:
- To develop a method for investigating biomechanical alterations in Perthes' disease.
- To utilize finite element (FE) contact modeling with MRI for hip joint analysis.
Main Methods:
- A 3D FE model of the hip joint was created using MRI data from a unilateral Perthes' disease case.
- Contact pressure and stress patterns were analyzed in both the affected and unaffected hips.
Main Results:
- The unaffected hip showed well-distributed stress and contact pressure.
- The Perthes' hip exhibited elevated stress (3.9 MPa von Mises stress, 5.3 MPa contact pressure) compared to the healthy hip (2.4 MPa, 4.9 MPa).
- Increased stress around the necrotic-healthy bone interface indicated additional load-bearing in the affected femoral head.
Conclusions:
- Patient-specific FE contact modeling using MRI can evaluate biomechanical alterations in Perthes' disease.
- Identifying stress concentrations is crucial for preoperative planning and stress relief in malformed hips.
- Further multi-patient studies are needed to validate this method for surgical planning.
Abstract:
Perthes' disease is a destructive hip joint disorder characterized by malformation of the femoral head in young children. While the morphological changes have been widely studied, the biomechanical effects of these changes still need to be further elucidated. The objective of this study was to develop a method to investigate the biomechanical alterations in Perthes' disease by finite element (FE) contact modeling using MRI. The MRI data of a unilateral Perthes' case was obtained to develop the three-dimensional FE model of the hip joint. The stress and contact pressure patterns in the unaffected hip were well distributed. Elevated concentrations of stress and contact pressure were found in the Perthes' hip. The highest femoral cartilage von Mises stress 3.9 MPa and contact pressure 5.3 MPa were found in the Perthes' hip, whereas 2.4 MPa and 4.9 MPa in the healthy hip, respectively. The healthy bone in the femoral head of the Perthes' hip carries additional loads as indicated by the increase of stress levels around the necrotic-healthy bone interface. Identifying the biomechanical changes, such as the location of stress and contact pressure concentrations, is a prerequisite for the preoperative planning to obtain stress relief for the highly stressed areas in the malformed hip. This single-patient study demonstrated that the biomechanical alterations in Perthes' disease can be evaluated individually by patient-specific finite element contact modeling using MRI. A multi-patient study is required to test the strength of the proposed method as a pre-surgery planning tool.
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