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Updated: Jun 18, 2026

Subject-specific Musculoskeletal Model for Studying Bone Strain During Dynamic Motion
Published on: April 11, 2018
Computational simulation of spontaneous bone straightening in growing children
Robert Dana Carpenter1, Dennis R Carter
1Bone and Joint Center, Veterans Affairs Palo Alto Health Care System, Palo Alto, CA 94304, USA. dana.carpenter@radiology.ucsf.edu
Insights
Periosteal loads accelerate spontaneous bone straightening in children with congenital tibia bowing. Including these mechanical forces in simulations led to more complete correction of bowing defects compared to models without them.
Area of Science:
- Orthopedics
- Biomechanical Engineering
- Developmental Biology
Background:
- Periosteal surface pressures inhibit bone formation, while tensile strains promote it.
- Congenital posteromedial bowing of the tibia is a common pediatric orthopedic condition.
- Understanding the mechanobiology of bone growth is crucial for treating deformities.
Purpose of the Study:
- To develop a computational model simulating spontaneous bone straightening in pediatric tibia bowing.
- To incorporate periosteal surface pressures and strains into bone modeling.
- To evaluate the effect of periosteal loads on the correction of congenital bowing defects.
Main Methods:
- Developed 3D finite element models of the periosteum.
- Determined relationships between defect angle and periosteal pressure/strain distribution.
- Created an iterative simulation incorporating periosteal loads to model tibia growth and straightening.
Main Results:
- Simulations including periosteal loads showed accelerated defect angle reduction (10 degrees at 2 years) and near-complete straightening by age 25.
- Models without periosteal loads showed slower correction (23 degrees at 2 years) with residual deformity.
- A "modeling drift" bone apposition/resorption pattern emerged only when periosteal loads were included.
Conclusions:
- Periosteal pressures and tensile strains significantly accelerate spontaneous bone straightening in congenital tibia bowing.
- Computational models including periosteal mechanobiology yield results consistent with clinical observations.
- These findings highlight the importance of periosteal mechanobiological effects in correcting pediatric bone deformities.
Abstract:
Periosteal surface pressures have been shown to inhibit bone formation and induce bone resorption, while tensile strains perpendicular to the periosteal surface have been shown to inhibit bone resorption and induce new bone deposition. A new computational model was developed to incorporate these experimental findings into simulations of spontaneous bone straightening in children with congenital posteromedial bowing of the tibia. Three-dimensional finite element models of the periosteum were used to determine the relationships between the defect angle and the distribution of bone surface pressures and strains due to growth-generated tensile strains in the periosteum. These relationships were incorporated into an iterative simulation to model development of a growing, bowed tibia with an initial defect angle of 27 degrees. When periosteal loads were included in the simulation, the defect angle decreased to 10 degrees after 2 years, and the bone straightened by an age of 25 years. When periosteal loads were not included in the simulation, the defect angle decreased to 23 degrees after 2 years, and a defect angle of 9 degrees remained at an age of 25 years. A "modeling drift" bone apposition/resorption pattern appeared only when periosteal loads were included. The results suggest that periosteal pressures and tensile strains induced by bone bowing can accelerate the process of bone straightening and lead to more complete correction of congenital bowing defects. Including the mechanobiological effects of periosteal surface loads in the simulations produced results similar to those seen clinically, with rapid straightening during the first few years of growth.
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