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Published on: December 3, 2016
Molecular profiling of failed endochondral ossification in mucopolysaccharidosis VII
Sun H Peck1, John W Tobias2, Eileen M Shore3
1Department of Neurosurgery, Perelman School of Medicine, University of Pennsylvania, 3450 Hamilton Walk, Philadelphia, PA, USA; Department of Orthopaedic Surgery, Perelman School of Medicine, University of Pennsylvania, 3450 Hamilton Walk, Philadelphia, PA, USA.
Abstract:
Mucopolysaccharidosis (MPS) VII is a lysosomal storage disorder characterized by deficient activity of β-glucuronidase, leading to progressive accumulation of incompletely degraded heparan, dermatan, and chondroitin sulfate glycosaminoglycans (GAGs). Patients with MPS VII exhibit progressive skeletal deformity including kyphoscoliosis and joint dysplasia, which decrease quality of life and increase mortality. Previously, using the naturally-occurring canine model, we demonstrated that one of the earliest skeletal abnormalities to manifest in MPS VII is failed initiation of secondary ossification in vertebrae and long bones at the requisite postnatal developmental stage. The objective of this study was to obtain global insights into the molecular mechanisms underlying this failed initiation of secondary ossification. Epiphyseal tissue was isolated postmortem from the vertebrae of control and MPS VII-affected dogs at 9 and 14 days-of-age (n = 5 for each group). Differences in global gene expression across this developmental window for both cohorts were measured using whole-transcriptome sequencing (RNA-Seq). Principal Component Analysis revealed clustering of samples within each group, indicating clear effects of both age and disease state. At 9 days-of-age, 1375 genes were significantly differentially expressed between MPS VII and control, and by 14 days-of-age, this increased to 4719 genes. A targeted analysis focused on signaling pathways important in the regulation of endochondral ossification was performed, and a subset of gene expression differences were validated using qPCR. Osteoactivin (GPNMB) was the top upregulated gene in MPS VII at both ages. In control samples, temporal changes in gene expression from 9 to 14 days-of-age were consistent with chondrocyte maturation, cartilage resorption, and osteogenesis. In MPS VII samples, however, elements of key osteogenic pathways such as Wnt/β-catenin and BMP signaling were not upregulated during this same developmental window suggesting that important bone formation pathways are not activated. In conclusion, this study represents an important step towards identifying therapeutic targets and biomarkers for bone disease in MPS VII patients during postnatal growth.
Insights
Mucopolysaccharidosis (MPS) VII, a genetic disorder, causes bone development issues due to impaired enzyme activity. This study reveals key gene expression changes in canine models, highlighting disrupted bone formation pathways and potential therapeutic targets for skeletal abnormalities.
Area of Science:
- Genetics and Molecular Biology
- Skeletal Biology
- Lysosomal Storage Disorders
Background:
- Mucopolysaccharidosis (MPS) VII is a lysosomal storage disorder caused by beta-glucuronidase deficiency, leading to glycosaminoglycan accumulation.
- Patients with MPS VII experience progressive skeletal deformities, impacting quality of life and survival.
- Early skeletal defects in MPS VII include failure of secondary ossification in vertebrae and long bones.
Purpose of the Study:
- To investigate the molecular mechanisms behind the failed initiation of secondary ossification in MPS VII.
- To identify global gene expression differences in the epiphyseal tissue of MPS VII canine models during postnatal development.
Main Methods:
- Whole-transcriptome sequencing (RNA-Seq) of epiphyseal tissue from control and MPS VII canine vertebrae at 9 and 14 days of age.
- Principal Component Analysis to assess effects of age and disease state on gene expression.
- Quantitative PCR (qPCR) to validate key gene expression findings.
Main Results:
- Significant differences in global gene expression were observed between MPS VII and control groups, increasing with age (1375 genes at 9 days, 4719 genes at 14 days).
- Osteoactivin (GPNMB) was identified as the top upregulated gene in MPS VII at both ages.
- Key osteogenic pathways, including Wnt/β-catenin and BMP signaling, were not upregulated in MPS VII samples during the critical developmental window, unlike in controls.
Conclusions:
- This study elucidates molecular mechanisms contributing to failed secondary ossification in MPS VII.
- Disrupted activation of essential bone formation pathways is a key feature of skeletal disease in MPS VII.
- Findings provide a foundation for identifying therapeutic targets and biomarkers for bone disease in MPS VII.
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