The bone formation defect in idiopathic juvenile osteoporosis is surface-specific
F Rauch1, R Travers, M E Norman
1Genetics Unit, Shriners Hospital, McGill University, Montréal, Québec, Canada. frauch@shriners.mcgill.ca
Insights
Idiopathic juvenile osteoporosis (IJO) primarily affects cancellous bone, not cortical bone remodeling. However, IJO may involve decreased modeling of the internal cortex, impacting bone surfaces near the marrow cavity.
Area of Science:
- Pediatric Endocrinology
- Bone Biology
- Skeletal Diseases
Background:
- Idiopathic juvenile osteoporosis (IJO) is known to cause reduced cancellous bone volume and low bone formation rates.
- The effect of IJO on cortical bone has not been previously investigated.
Purpose of the Study:
- To investigate whether idiopathic juvenile osteoporosis (IJO) affects cortical bone remodeling and modeling in children.
- To compare intracortical remodeling and bone formation rates between children with IJO and healthy controls.
Main Methods:
- Analysis of transiliac bone biopsies from eight children with IJO and nine healthy children.
- Tetracycline double labeling was used to assess bone formation and remodeling parameters.
- Structural and surface-based histomorphometric analysis of cortical bone.
Main Results:
- No significant differences were found in intracortical remodeling activity between IJO patients and controls.
- Cortical porosity, active and quiescent canal diameters were similar in both groups.
- A trend towards decreased internal cortical width was observed in IJO patients, suggesting reduced endocortical modeling.
Conclusions:
- The primary disturbance in idiopathic juvenile osteoporosis (IJO) appears to be confined to cancellous bone.
- While intracortical remodeling is unaffected, there may be a defect in endocortical bone modeling in IJO.
- The pathogenesis of IJO might predominantly involve bone surfaces adjacent to the bone marrow.
Abstract:
We have previously shown that idiopathic juvenile osteoporosis (IJO) is characterized by a decreased cancellous bone volume and a very low bone formation rate on cancellous surfaces. Whether IJO similarly affects cortical bone is unknown. We therefore compared tetracycline double-labeled transfixing iliac-crest bone biopsies from eight children with typical clinical features of IJO (six girls; age 10-12 years) and from nine children (four girls; age 9-12 years) without metabolic bone disease. No differences in intracortical remodeling activity were detected. Both structural parameters reflecting intracortical remodeling (cortical porosity, active canal diameter, and quiescent canal diameter) and bone surface-based metabolic parameters (osteoid, osteoblast, mineralizing, osteoclast and eroded surfaces, and bone formation rate) were similar in IJO patients and controls (p > 0.2 each, t-test). Although the internal cortex of the biopsy was thinner in IJO patients than in controls (660 +/- 170 microm vs. 980 +/- 320 microm; p = 0.02), there was no difference in the width of the external cortex (p = 0.36). In growing children, both cortices exhibit an external modeling drift. Therefore, the difference in internal cortical width point to a decreased modeling activity on the endocortical surface of the internal cortex. In fact, bone formation rate on this surface was 48% lower in IJO patients than in controls (82 +/- 45 microm(3)/microm(2) per year vs. 159 +/- 162 microm(3)/microm(2) per year). However, this difference did not achieve statistical significance (p = 0.21) due to the high variability of bone formation rate on modeling surfaces. The disturbance of bone remodeling in IJO is limited to cancellous bone, but there may be a modeling defect affecting the internal cortex. Thus, the process causing IJO appears to mainly affect bone surfaces that are in contact with the bone marrow cavity.
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