Signaling systems affecting the severity of multiple osteochondromas

Bone. 2018 Jun:111:71-81. doi: 10.1016/j.bone.2018.03.010. Epub 2018 Mar 13.

Abstract

Multiple osteochondromas (MO) syndrome is a dominant autosomal bone disorder characterized by the formation of cartilage-capped bony outgrowths that develop at the juxtaposition of the growth plate of endochondral bones. MO has been linked to mutations in either EXT1 or EXT2, two glycosyltransferases required for the synthesis of heparan sulfate (HS). The establishment of mouse mutants demonstrated that a clonal, homozygous loss of Ext1 in a wild type background leads to the development of osteochondromas. Here we investigate mechanisms that might contribute to the variation in the severity of the disease observed in human patients. Our results show that residual amounts of HS are sufficient to prevent the development of osteochondromas strongly supporting that loss of heterozygosity is required for osteochondroma formation. Furthermore, we demonstrate that different signaling pathways affect size and frequency of the osteochondromas thereby modulating the severity of the disease. Reduced Fgfr3 signaling, which regulates proliferation and differentiation of chondrocytes, increases osteochondroma number, while activated Fgfr3 signaling reduces osteochondroma size. Both, activation and reduction of Wnt/β-catenin signaling decrease osteochondroma size and frequency by interfering with the chondrogenic fate of the mutant cells. Reduced Ihh signaling does not change the development of the osteochondromas, while elevated Ihh signaling increases the cellularity and inhibits chondrocyte differentiation in a subset of osteochondromas and might thus predispose osteochondromas to the transformation into chondrosarcomas.

Keywords: Chondrocyte differentiation; Ext1; Fgfr3; Heparan sulfates; Ihh; Osteochondroma; Ptch1; Wnt; β-Catenin.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Cell Differentiation
  • Chondrocytes / pathology
  • Disease Models, Animal
  • Exostoses, Multiple Hereditary / genetics
  • Exostoses, Multiple Hereditary / metabolism
  • Exostoses, Multiple Hereditary / pathology*
  • Growth Plate / pathology
  • Hedgehog Proteins / genetics
  • Hedgehog Proteins / physiology*
  • Heparitin Sulfate / metabolism
  • Humans
  • Loss of Heterozygosity
  • Mice
  • N-Acetylglucosaminyltransferases / genetics
  • Receptor, Fibroblast Growth Factor, Type 3 / genetics
  • Receptor, Fibroblast Growth Factor, Type 3 / physiology*
  • Signal Transduction
  • Wnt Signaling Pathway / genetics
  • Wnt Signaling Pathway / physiology
  • beta Catenin / genetics
  • beta Catenin / physiology*

Substances

  • Hedgehog Proteins
  • beta Catenin
  • ihh protein, mouse
  • Heparitin Sulfate
  • N-Acetylglucosaminyltransferases
  • exostosin-1
  • Fgfr3 protein, mouse
  • Receptor, Fibroblast Growth Factor, Type 3