ArticleBone research2023
Skeletal phenotypes in secreted frizzled-related protein 4 gene knockout mice mimic skeletal architectural abnormalities in subjects with Pyle's disease from SFRP4 mutations.
Article in Bone research, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
What it found
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Who cites it
8 citing papers in PubMed, 7 citations in OpenAlex.
- Case Report: Cortical bone loss, impaired mineralization, and reduced adiposity contributing to chronic bone pain in SFRP4-related skeletal disease with an ALPL variant.Frontiers in endocrinology · 2026Article
- Article
- Identification and function of periosteal skeletal stem cells in skeletal development, homeostasis, and disease.Journal of orthopaedic translation · 2025Review
- Electrodiagnostic Findings in a Case of Pyle's Disease: A Case-Report.Iranian journal of child neurology · 2025Article
- Naked cuticle homolog 2 controls the differentiation of osteoblasts and osteoclasts and ameliorates bone loss in ovariectomized mice.Genes & diseases · 2025Article
- Osteopetrosis-like disorders induced by osteoblast-specific retinoic acid signaling inhibition in mice.Bone research · 2024Article
- Si and Zn dual ions upregulate the osteogenic differentiation of mBMSCs: mRNA transcriptomic sequencing analysis.Journal of materials science. Materials in medicine · 2024Article
- Sfrp4 is required to maintain Ctsk-lineage periosteal stem cell niche function.Proceedings of the National Academy of Sciences of the United States of America · 2023Article
Corrections and comments
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Authors and funding
3 authors at 2 institutions in 2 countries.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Mutations in SFRP4 cause Pyle's bone disease with wide metaphyses and increased skeletal fragility. The WNT signaling pathway plays important roles in determining skeletal architecture and SFRP4 is a secreted Frizzled decoy receptor that inhibits WNT signaling. Seven cohorts of male and female Sfrp4 gene knockout mice, examined through 2 years of age, had a normal lifespan but showed cortical and trabecular bone phenotypes. Mimicking human Erlenmeyer flask deformities, bone cross-sectional areas were elevated 2-fold in the distal femur and proximal tibia but only 30% in femur and tibia shafts. Reduced cortical bone thickness was observed in the vertebral body, midshaft femur and distal tibia. Elevated trabecular bone mass and numbers were observed in the vertebral body, distal femur metaphysis and proximal tibia metaphysis. Midshaft femurs retained extensive trabecular bone through 2 years of age. Vertebral bodies had increased compressive strength, but femur shafts had reduced bending strength. Trabecular, but not cortical, bone parameters in heterozygous Sfrp4 mice were modestly affected. Ovariectomy resulted in similar declines in both cortical and trabecular bone mass in wild-type and Sfrp4 KO mice. SFRP4 is critical for metaphyseal bone modeling involved in determining bone width. Sfrp4 KO mice show similar skeletal architecture and bone fragility deficits observed in patients with Pyle's disease with SFRP4 mutations.
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Registered trials
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