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Aberrant perichondrial BMP signaling mediates multiple osteochondromagenesis in mice
Toshihiro Inubushi, Satoshi Nozawa, Kazu Matsumoto, Fumitoshi Irie, Yu Yamaguchi
Toshihiro Inubushi, Satoshi Nozawa, Kazu Matsumoto, Fumitoshi Irie, Yu Yamaguchi
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Research Article Bone biology

Aberrant perichondrial BMP signaling mediates multiple osteochondromagenesis in mice

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Abstract

Multiple hereditary exostoses (MHE) is characterized by the development of numerous benign bony tumors (osteochondromas). Although it has been well established that MHE is caused by mutations in EXT1 and EXT2, which encode glycosyltransferase essential for heparan sulfate (HS) biosynthesis, the cellular origin and molecular mechanisms of MHE remain elusive. Here, we show that in Ext1 mutant mice, osteochondromas develop from mesenchymal stem cell–like progenitor cells residing in the perichondrium, and we show that enhanced BMP signaling in these cells is the primary signaling defect that leads to osteochondromagenesis. We demonstrate that progenitor cells in the perichondrium, including those in the groove of Ranvier, highly express HS and that Ext1 ablation targeted to the perichondrium results in the development of osteochondromas. Ext1-deficient perichondrial progenitor cells show enhanced BMP signaling and increased chondrogenic differentiation both in vitro and in vivo. Consistent with the functional role for enhanced BMP signaling in osteochondromagenesis, administration of the small molecule BMP inhibitor LDN-193189 suppresses osteochondroma formation in two MHE mouse models. Together, our results demonstrate a role for enhanced perichondrial BMP signaling in osteochondromagenesis in mice, and they suggest the possibility of pharmacological treatment of MHE with BMP inhibitors.

Authors

Toshihiro Inubushi, Satoshi Nozawa, Kazu Matsumoto, Fumitoshi Irie, Yu Yamaguchi

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Figure 4

BMP signaling is upregulated in the perichondrium and osteochondromas of Col2a1-Ext1CKO mice.

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BMP signaling is upregulated in the perichondrium and osteochondromas of...
(A–C) Frozen sections of the radius (A, B) and a rib bone (C) from P10 Col2a1-Ext1CKO and control (Ext1flox/flox; WT) littermates were double-labeled with anti-pSmad1/5/8 antibody (green) and TO-PRO-3 (blue) or stained with Safranin O. (A) pSmad1/5/8 expression in the perichondrium of the radius. The location of the groove of Ranvier is indicated by arrows. Note that the intensity and spatial extension of pSmad1/5/8 immunoreactivity is increased in the perichondrium of Col2a1-Ext1CKO mice. (B) High-power views of the groove of Ranvier. In control mice (Ext1flox/flox), most pSmad1/5/8 immunoreactivity is seen in the diaphyseal side of the groove of Ranvier, and few pSmad1/5/8-immunoreactive cells are present within the groove per se. In Col2a1-Ext1CKO mice, the distribution of pSmad1/5/8-expressing cells is expanded both laterally and longitudinally. The cells forming the abnormal cell cluster within the groove of Ranvier (indicated by arrowheads) are also pSmad1/5/8-positive. Broken lines depict the perichondrium/growth plate boundary. (C) pSmad1/5/8 expression in the perichondrium of a rib bone. While WT perichondrium shows little pSmad1/5/8 immunoreactivity, perichondrium of Col2a1-Ext1CKO mice displays strong pSmad1/5/8 immunoreactivity (arrows). (D) pSmad1/5/8 expression in osteochondromas formed in the forelimb of P28 Fsp1-Ext1CKO mouse. Adjacent sections were stained with Safranin O (left panel) or double-labeled with anti-pSmad1/5/8 antibody and TO-PRO-3 (right panel). Cells forming the cartilage cap of osteochondromas are pSmad1/5/8-positive. (E) pSmad1/5/8 expression in overgrown cartilage in a rib bone of P28 Fsp1-Ext1CKO mouse. The image on the right shows an enlarged view of the area indicated by a rectangle. Cells forming overgrown cartilage are immunoreactive to pSmad1/5/8. Scale bars: 0.1 mm (A, C, D, E); 20 μm (B). Data shown are representative images; each analysis was performed on at least 3 mice per genotype.

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