SMAD3 mutation in LDS3 causes bone fragility by impairing the TGF-β pathway and enhancing osteoclastogenesis

Ahmed El-Gazzar1, Heeseog Kang2, Nadja Fratzl-Zelman3,4

  • 1Department of Paediatrics and Adolescent Medicine, Johannes Kepler University Linz, Linz, Austria.

Bone Reports
|July 25, 2022
PubMed

Insights

Loss-of-function mutations in SMAD3 cause Loeys-Dietz syndrome type 3 (LDS3), leading to reduced bone formation and increased fracture risk. This study reveals impaired SMAD3 activity and stability, alongside heightened osteoclastogenesis, in affected bone tissue.

Area of Science:

  • Genetics and Molecular Biology
  • Skeletal Biology and Disease
  • Connective Tissue Disorders

Background:

  • Loss-of-function mutations in SMAD3 gene cause Loeys-Dietz syndrome type 3 (LDS3), a rare disorder affecting connective tissues, characterized by vascular and skeletal abnormalities.
  • Dysregulation of the TGF-β/SMAD signaling pathway is implicated in abnormal skeletal development and bone fragility, but specific bone histomorphometric and ultrastructural changes in LDS3 remain largely uncharacterized.
  • The precise molecular mechanisms underlying the LDS3 phenotype driven by SMAD3 mutations are not fully understood.

Purpose of the Study:

  • To investigate the histomorphometric and matrix mineralization characteristics of bone in a human patient with an SMAD3 mutation.
  • To explore the cellular defects within the TGF-β/SMAD pathway associated with the SMAD3 mutation in vitro.
  • To elucidate the pathophysiology of Loeys-Dietz syndrome type 3 (LDS3) and identify potential therapeutic targets.

Main Methods:

  • Bone histomorphometry and quantitative backscattered electron imaging were performed on patient bone samples.
  • Functional analysis of the patient's SMAD3 mutation (p.I67S) was conducted in HEK293 cells using plasmid vectors to assess phosphorylation and transcriptional activity.
  • Luciferase reporter assays and analysis of TGF-β signaling target genes were performed, alongside assessment of SMAD3 protein stability in patient fibroblasts and osteoclastogenic differentiation in PBMCs.

Main Results:

  • Bone histomorphometry revealed significantly reduced cortical thickness (-68%), trabecular thickness (-32%), and bone formation rate (-50%), with delayed mineralization and undermineralized bone matrix.
  • The patient's SMAD3 (p.I67S) mutation exhibited reduced phosphorylation and transcriptional activity compared to wild-type SMAD3, and impaired SMAD3 protein stability was observed in patient fibroblasts.
  • Increased osteoclastogenic differentiation and upregulation of osteoclast-associated genes were noted in patient PBMCs, correlated with decreased expression of TGF-β signaling target genes.

Conclusions:

  • Bone in patients with the SMAD3 (p.I67S) mutation is characterized by reduced bone formation, decreased SMAD3 activation and protein stability, and increased osteoclastogenesis.
  • These findings provide critical insights into the pathophysiology of LDS3, highlighting the role of SMAD3 dysfunction in skeletal abnormalities.
  • Targeting the TGF-β/SMAD pathway presents a promising therapeutic strategy for LDS3.

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