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Published on: August 4, 2019
PTHR1 mutations associated with Ollier disease result in receptor loss of function
Alain Couvineau1, Vinciane Wouters, Guylène Bertrand
1INSERM U773, Centre de Recherche Biomédicale Bichat Beaujon, Paris, France.
Abstract:
PTHR1-signaling pathway is critical for the regulation of endochondral ossification. Thus, abnormalities in genes belonging to this pathway could potentially participate in the pathogenesis of Ollier disease/Maffucci syndrome, two developmental disorders defined by the presence of multiple enchondromas. In agreement, a functionally deleterious mutation in PTHR1 (p.R150C) was identified in enchondromas from two of six unrelated patients with enchondromatosis. However, neither the p.R150C mutation (26 tumors) nor any other mutation in the PTHR1 gene (11 patients) could be identified in another study. To further define the role of PTHR1-signaling pathway in Ollier disease and Maffucci syndrome, we analyzed the coding sequences of four genes (PTHR1, IHH, PTHrP and GNAS1) in leucocyte and/or tumor DNA from 61 and 23 patients affected with Ollier disease or Maffucci syndrome, respectively. We identified three previously undescribed missense mutations in PTHR1 in patients with Ollier disease at the heterozygous state. Two mutations (p.G121E, p.A122T) were present only in enchondromas, and one (p.R255H) in both enchondroma and leukocyte DNA. Assessment of receptor function demonstrated that these three mutations impair PTHR1 function by reducing either the affinity of the receptor for PTH or the receptor expression at the cell surface. These mutations were not found in DNA from 222 controls. Including our data, PTHR1 functionally deleterious mutations have now been identified in five out 31 enchondromas from Ollier patients. These findings provide further support for the idea that heterozygous mutations in PTHR1 that impair receptor function participate in the pathogenesis of Ollier disease in some patients.
Insights
New mutations in the PTHR1 gene are linked to Ollier disease, a rare bone disorder. These PTHR1 gene mutations impair receptor function, contributing to enchondromas in some patients.
Area of Science:
- Genetics
- Molecular Biology
- Developmental Biology
Background:
- The PTHR1-signaling pathway is crucial for endochondral ossification.
- Disorders like Ollier disease and Maffucci syndrome involve multiple enchondromas, suggesting a role for PTHR1 pathway gene abnormalities.
- Previous studies showed conflicting results regarding PTHR1 mutations in enchondromatosis.
Purpose of the Study:
- To investigate the role of the PTHR1-signaling pathway in the pathogenesis of Ollier disease and Maffucci syndrome.
- To identify novel mutations in key genes of the PTHR1 pathway in patients with these conditions.
Main Methods:
- Analyzed coding sequences of PTHR1, IHH, PTHrP, and GNAS1 genes.
- Utilized DNA from leukocytes and/or tumors of 61 Ollier disease and 23 Maffucci syndrome patients.
- Assessed the functional impact of identified mutations on PTHR1 receptor function.
Main Results:
- Identified three novel heterozygous missense mutations in PTHR1 in Ollier disease patients.
- Two mutations (p.G121E, p.A122T) were found exclusively in enchondromas; one (p.R255H) was in both enchondroma and leukocyte DNA.
- These mutations were shown to impair PTHR1 function by affecting ligand affinity or receptor expression and were absent in 222 controls.
Conclusions:
- Heterozygous, functionally deleterious mutations in PTHR1 contribute to Ollier disease pathogenesis in a subset of patients.
- These findings reinforce the significance of PTHR1 signaling in enchondroma development.
- Further research into PTHR1 pathway genetics is warranted for understanding Ollier disease and Maffucci syndrome.
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