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.

Related Concept Videos

Bone Remodeling01:40

Bone Remodeling

Bone remodeling is a continuous and balanced process of bone resorption by osteoclasts and bone formation by osteoblasts. In adults, it helps maintain bone mass and calcium homeostasis. While mechanical stress can stimulate turnover as part of the normal maintenance and reparative process, several hormones also regulate bone remodeling.
Bone Remodeling and Repair01:31

Bone Remodeling and Repair

Osteoclasts are cells responsible for bone resorption and remodeling. They originate from hematopoietic progenitor cells present in the bone marrow. Numerous progenitor cells fuse to form multinucleated cells, each with 10-20 nuclei. A single osteoclast has a diameter of 150 to 200 µM. These cells have ruffled borders that break down the underlying bone tissue and release minerals such as calcium into the blood in bone resorption. Osteoclasts cling to bones with their ruffled edges during bone...
Growth of Cartilage and Bone Tissue01:27

Growth of Cartilage and Bone Tissue

Chondrocytes form a temporary cartilaginous model by dividing and secreting a thick gel-like extracellular matrix. Once the chondrocytes undergo programmed cell death, osteoblasts enter the site of the cartilaginous model. The process of replacing the temporary cartilaginous model with bone in an ordered manner is called endochondral ossification. In endochondral ossification, not all of the cartilage is replaced by bone tissue. Some cartilage that performs a protective and supportive function...
Bone Formation by Endochondral Ossification01:24

Bone Formation by Endochondral Ossification

Bone formation, or ossification, begins around the sixth to seventh week of embryonic development. Most bones develop from a cartilaginous template through the process of endochondral ossification. Cartilage formation begins when clusters of mesenchymal cells differentiate into chondrocytes. These chondrocytes proliferate rapidly and secrete an extracellular matrix that becomes encased in a membrane called the perichondrium. The resulting cartilage model provides a template that resembles the...
Bone Formation by Intramembranous Ossification01:29

Bone Formation by Intramembranous Ossification

Intramembranous ossification is one of the two processes involved in the development of bones within an embryo. The flat bones of the face, most of the cranial bones, and the clavicles are formed via this process. During intramembranous ossification, the bones develop directly from sheets of undifferentiated mesenchymal connective tissue.
The process begins when mesenchymal cells in the embryonic skeleton gather together and differentiate into osteogenic cells, which then develop into...
Bone Structure01:55

Bone Structure

Within the skeletal system, the structure of a bone, or osseous tissue, can be exemplified in a long bone, like the femur, where there are two types of osseous tissue: cortical and cancellous.