Classical and neonatal Marfan syndrome mutations in fibrillin-1 cause differential protease susceptibilities and

Ryan Kirschner1, Dirk Hubmacher, Garud Iyengar

  • 1Faculty of Dentistry, Division of Biomedical Sciences, Faculty of Medicine, McGill University, Montreal H3A 2B2, Canada.

Insights

Mutations causing severe neonatal Marfan syndrome (MFS) increase fibrillin-1 protein susceptibility to proteases and impair heparin binding more than classical MFS mutations. This suggests distinct molecular mechanisms underlying different MFS severities.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Genetics

Background:

  • Marfan syndrome (MFS) results from fibrillin-1 mutations, affecting vascular, skeletal, and ocular systems.
  • Fibrillin-1 is essential for extracellular matrix microfibrils, elastic fiber formation, and growth factor regulation.

Purpose of the Study:

  • To compare molecular differences between mutations causing severe neonatal MFS and milder classical MFS.
  • To investigate structural and functional consequences of MFS-associated fibrillin-1 mutations.

Main Methods:

  • Recombinant human fibrillin-1 fragments with neonatal and classical MFS mutations were created.
  • Circular dichroism spectroscopy and gel filtration analyzed protein structure.
  • Proteolytic susceptibility was assessed using various proteases (plasmin, thrombin, MMPs, cathepsins).
  • Heparin/heparan sulfate binding was evaluated.

Main Results:

  • Mutant fibrillin-1 proteins showed similar secondary structure and heat stability to wild-type.
  • Neonatal MFS mutations led to increased proteolytic cleavage compared to classical mutations and wild-type.
  • New cleavage sites were identified, indicating subtle structural changes.
  • Neonatal mutations significantly impaired heparin/heparan sulfate binding.

Conclusions:

  • Neonatal and classical MFS mutations have differential molecular consequences.
  • Enhanced proteolytic susceptibility and impaired heparin binding are key features of neonatal MFS mutations.
  • These findings suggest distinct pathogenetic pathways for severe and classical Marfan syndrome.

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