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Published on: August 26, 2013
Adamts17 is involved in skeletogenesis through modulation of BMP-Smad1/5/8 pathway
Takeshi Oichi1, Yuki Taniguchi1, Kazuhito Soma1
1Sensory and Motor System Medicine, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo, 113-8655, Japan.
Abstract:
Fibrillin microfibrils are ubiquitous elements of extracellular matrix assemblies that play crucial roles in regulating the bioavailability of growth factors of the transforming growth factor beta superfamily. Recently, several "a disintegrin and metalloproteinase with thrombospondin motifs" (ADAMTS) proteins were shown to regulate fibrillin microfibril function. Among them, ADAMTS17 is the causative gene of Weill-Marchesani syndrome (WMS) and Weill-Marchesani-like syndrome, of which common symptoms are ectopia lentis and short stature. ADAMTS17 has also been linked to height variation in humans; however, the molecular mechanisms whereby ADAMTS17 regulates skeletal growth remain unknown. Here, we generated Adamts17-/- mice to examine the role of Adamts17 in skeletogenesis. Adamts17-/- mice recapitulated WMS, showing shorter long bones, brachydactyly, and thick skin. The hypertrophic zone of the growth plate in Adamts17-/- mice was shortened, with enhanced fibrillin-2 deposition, suggesting increased incorporation of fibrillin-2 into microfibrils. Comprehensive gene expression analysis of growth plates using laser microdissection and RNA sequencing indicated alteration of the bone morphogenetic protein (BMP) signaling pathway after Adamts17 knockout. Consistent with this, phospho-Smad1 levels were downregulated in the hypertrophic zone of the growth plate and in Adamts17-/- primary chondrocytes. Delayed terminal differentiation of Adamts17-/- chondrocytes, observed both in primary chondrocyte and primordial metatarsal cultures, and was prevented by BMP treatment. Our data indicated that Adamts17 is involved in skeletal formation by modulating BMP-Smad1/5/8 pathway, possibly through inhibiting the incorporation of fibrillin-2 into microfibrils. Our findings will contribute to further understanding of disease mechanisms and will facilitate the development of therapeutic interventions for WMS.
Insights
Adamts17 deficiency causes skeletal defects by altering fibrillin-2 incorporation and bone morphogenetic protein (BMP) signaling in mice, offering insights into Weill-Marchesani syndrome.
Area of Science:
- Biochemistry
- Genetics
- Developmental Biology
Background:
- Fibrillin microfibrils are key extracellular matrix components regulating growth factor bioavailability.
- ADAMTS proteins, including ADAMTS17, modulate fibrillin microfibril function.
- ADAMTS17 mutations cause Weill-Marchesani syndrome (WMS), characterized by ectopia lentis and short stature, but its role in skeletal growth is unclear.
Purpose of the Study:
- To investigate the role of Adamts17 in skeletogenesis using a knockout mouse model.
- To elucidate the molecular mechanisms by which Adamts17 influences skeletal development and WMS pathogenesis.
Main Methods:
- Generated Adamts17 knockout (Adamts17-/-) mice.
- Analyzed skeletal phenotypes, including long bone length and digit morphology.
- Performed gene expression analysis (laser microdissection and RNA sequencing) on growth plates.
- Assessed bone morphogenetic protein (BMP) signaling pathway activity (phospho-Smad1 levels).
- Evaluated chondrocyte differentiation in vitro and in response to BMP treatment.
Main Results:
- Adamts17-/- mice exhibited WMS-like phenotypes: shorter long bones, brachydactyly, and thick skin.
- Growth plates in knockout mice showed shortened hypertrophic zones with increased fibrillin-2 deposition.
- Gene expression analysis revealed alterations in the BMP signaling pathway.
- Downregulation of phospho-Smad1 was observed in knockout growth plates and chondrocytes.
- Delayed chondrocyte terminal differentiation in knockout mice was rescued by BMP treatment.
Conclusions:
- Adamts17 is crucial for skeletal formation, likely by regulating fibrillin-2 incorporation into microfibrils.
- The BMP-Smad1/5/8 signaling pathway is a key mediator of Adamts17's function in skeletogenesis.
- These findings enhance understanding of WMS disease mechanisms and potential therapeutic targets.
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