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Skeletal Phenotype Analysis of a Conditional Stat3 Deletion Mouse Model
Published on: July 3, 2020
PLS3 Deletions Lead to Severe Spinal Osteoporosis and Disturbed Bone Matrix Mineralization
Anders J Kämpe1, Alice Costantini1, Yael Levy-Shraga2,3
1Department of Molecular Medicine and Surgery and Center for Molecular Medicine, Karolinska Institutet, Stockholm, Sweden.
Insights
Deletions in the Plastin 3 (PLS3) gene cause severe childhood osteoporosis with bone fragility. This study reveals PLS3
Area of Science:
- Genetics and Molecular Biology
- Pediatric Endocrinology
- Skeletal Biology
Background:
- Mutations in the Plastin 3 (PLS3) gene are linked to X-linked primary bone fragility in children.
- The precise function of PLS3 in bone metabolism is not fully understood.
Purpose of the Study:
- To identify the genetic cause of childhood-onset primary osteoporosis in three boys from two families.
- To investigate the consequences of PLS3 deletions on bone homeostasis and mineralization.
Main Methods:
- Clinical and radiological assessments of affected individuals.
- Analysis of bone tissue from a transiliac biopsy.
- Quantitative backscattered electron imaging and Raman microspectroscopy for bone mineralization assessment.
Main Results:
- Identified PLS3 deletions (exons 4-16 or entire gene) as the cause of osteoporosis in three boys.
- Patients presented with severe spinal compression fractures, dysmorphic features, and myopathic gait.
- Bone biopsy revealed increased osteoid, prolonged mineralization time, and significant hypomineralization.
Conclusions:
- PLS3 deletions result in severe childhood-onset osteoporosis due to defective bone matrix mineralization.
- This study highlights a critical role for PLS3 in the bone mineralization process.
Abstract:
Mutations in the PLS3 gene, encoding Plastin 3, were described in 2013 as a cause for X-linked primary bone fragility in children. The specific role of PLS3 in bone metabolism remains inadequately understood. Here we describe for the first time PLS3 deletions as the underlying cause for childhood-onset primary osteoporosis in 3 boys from 2 families. We carried out thorough clinical, radiological, and bone tissue analyses to explore the consequences of these deletions and to further elucidate the role of PLS3 in bone homeostasis. In family 1, the 2 affected brothers had a deletion of exons 4-16 (NM_005032) in PLS3, inherited from their healthy mother. In family 2, the index patient had a deletion involving the entire PLS3 gene (exons 1-16), inherited from his mother who had osteoporosis. The 3 patients presented in early childhood with severe spinal compression fractures involving all vertebral bodies. The 2 brothers in family 1 also displayed subtle dysmorphic facial features and both had developed a myopathic gait. Extensive analyses of a transiliac bone biopsy from 1 patient showed a prominent increase in osteoid volume, osteoid thickness, and in mineralizing lag time. Results from quantitative backscattered electron imaging and Raman microspectroscopy showed a significant hypomineralization of the bone. Together our results indicate that PLS3 deletions lead to severe childhood-onset osteoporosis resulting from defective bone matrix mineralization, suggesting a specific role for PLS3 in the mineralization process. © 2017 American Society for Bone and Mineral Research.
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