The critical role of the TB5 domain of fibrillin-1 in endochondral ossification

Author:

Delhon Laure1,Mougin Zakaria2,Jonquet Jérémie2,Bibimbou Angélique2,Dubail Johanne1,Bou-Chaaya Cynthia1,Goudin Nicolas3,Le Goff Wilfried4,Boileau Catherine25,Cormier-Daire Valérie16ORCID,Le Goff Carine2ORCID

Affiliation:

1. Université Paris Cité , INSERM UMR1163, Laboratory of Molecular and Physiopathological Bases of Osteochondrodysplasia, Imagine Institute, Paris, F-75015 , France

2. Université Paris Cité and Université Sorbonne Paris Nord , INSERM U1148, Laboratory of Vascular Translational Science, Bichat Hospital, Paris, F-75018 , France

3. SFR Necker , Imaging Platform, Necker-Enfants Malades Hospital, Paris, F-75015 , France

4. Sorbonne University , Inserm UMR_S1166, Institute of Cardiometabolism and Nutrition (ICAN), Hôpital de la Pitié, Paris F-75013 , France

5. Departement of Genetics , AP-HP, Bichat Hospital, Paris, F-75018 , France

6. Department of Medical Genetics , Reference Center for Skeletal dysplasia AP-HP, Necker-Enfants Malades Hospital, Paris, F-75015 , France

Abstract

Abstract Mutations in the fibrillin-1 (FBN1) gene are responsible for the autosomal dominant form of geleophysic dysplasia (GD), which is characterized by short stature and extremities, thick skin and cardiovascular disease. All known FBN1 mutations in patients with GD are localized within the region encoding the transforming growth factor-β binding protein-like 5 (TB5) domain of this protein. Herein, we generated a knock-in mouse model, Fbn1Y1698C by introducing the p.Tyr1696Cys mutation from a patient with GD into the TB5 domain of murine Fbn1 to elucidate the specific role of this domain in endochondral ossification. We found that both Fbn1Y1698C/+ and Fbn1Y1698C/Y1698C mice exhibited a reduced stature reminiscent of the human GD phenotype. The Fbn1 point mutation introduced in these mice affected the growth plate formation owing to abnormal chondrocyte differentiation such that mutant chondrocytes failed to establish a dense microfibrillar network composed of FBN1. This original Fbn1 mutant mouse model offers new insight into the pathogenic events underlying GD. Our findings suggest that the etiology of GD involves the dysregulation of the extracellular matrix composed of an abnormal FBN1 microfibril network impacting the differentiation of the chondrocytes.

Funder

FRM prix Pomaret de Lalande

FP7 Sybil program

ANR

Publisher

Oxford University Press (OUP)

Subject

Genetics (clinical),Genetics,Molecular Biology,General Medicine

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