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Published on: December 16, 2021
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.
Abstract:
Mutations in fibrillin-1 give rise to Marfan syndrome (MFS) characterized by vascular, skeletal, and ocular abnormalities. Fibrillins form the backbone of extracellular matrix microfibrils in tissues including blood vessels, bone, and skin. They are crucial for regulating elastic fiber biogenesis and growth factor bioavailability. To compare the molecular consequences of mutations causing the severe neonatal MFS with mutations causing the milder classical MFS, we introduced representative point mutations from each group in a recombinant human fibrillin-1 fragment. Structural effects were analyzed by circular dichroism spectroscopy and analytical gel filtration chromatography. Proteolytic susceptibility was probed with non-physiological and physiological proteases, including plasmin, thrombin, matrix metalloproteinases, and cathepsins. All mutant proteins showed a similar gross secondary structure and no differences in heat stability as compared with the wild-type protein. Proteins harboring neonatal mutations were typically more susceptible to proteolytic cleavage compared with those with classical mutations and the wild-type protein. Proteolytic neo-cleavage sites were found both in close proximity and distant to the mutations, indicating small but significant structural changes exposing cryptic cleavage sites. We also report for the first time that cathepsin K and V cleave non-mutated fibrillin-1 at several domain boundaries. Compared with the classical mutations and the wild type, the group of neonatal mutations more severely affected the ability of fibrillin-1 to interact with heparin/heparan sulfate, which plays a role in microfibril assembly. These results suggest differential molecular pathogenetic concepts for neonatal and classical MFS including enhanced proteolytic susceptibility for physiologically relevant enzymes and loss of function for heparin binding.
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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