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Consequences of cysteine mutations in calcium-binding epidermal growth factor modules of fibrillin-1
Tillman Vollbrandt1, Kerstin Tiedemann, Ehab El-Hallous
1Department of Medical Molecular Biology of the University of Lübeck, D-23538 Luebeck, Germany.
Abstract:
Mutations in fibrillin-1 lead to Marfan syndrome and some related genetic disorders. Many of the more than 600 mutations currently known in fibrillin-1 eliminate or introduce cysteine residues in epidermal growth factor-like modules. Here we report structural and functional consequences of three selected cysteine mutations (R627C, C750G, and C926R) in fibrillin-1. The mutations have been analyzed by means of recombinant polypeptides produced in mammalian expression systems. The mRNA levels for the mutation constructs were similar to wild-type levels. All three mutated polypeptides were secreted by embryonic kidney cells (293) into the culture medium. Purification was readily feasible for mutants R627C and C750G, but not for C926R, which restricted the availability of this mutant polypeptide to selected analyses. The overall folds of the mutant polypeptides were indistinguishable from the wild-type as judged by the ultrastructural shape, CD analysis, and reactivity with a specific antibody sensitive for intact disulfide bonds. Subtle structural changes caused by R627C and C750G, however, were monitored by proteolysis and heat denaturation experiments. These changes occurred in the vicinity of the mutations either as short range effects (R627C) or both short and long range effects (C750G). Enhanced proteolytic susceptibility was observed for R627C and C750G to a variety of proteases. These results expand and further strengthen the concept that proteolytic degradation of mutated fibrillin-1 might be an important potential mechanism in the pathogenesis of Marfan syndrome and other disorders caused by mutations in fibrillin-1.
Insights
Fibrillin-1 mutations causing Marfan syndrome can lead to increased protein breakdown. This study reveals subtle structural changes in mutated fibrillin-1, enhancing its susceptibility to proteolysis, a key factor in disease development.
Area of Science:
- Biochemistry
- Genetics
- Molecular Biology
Background:
- Marfan syndrome and related disorders are caused by mutations in the fibrillin-1 gene.
- Many known fibrillin-1 mutations affect cysteine residues within epidermal growth factor-like modules.
Purpose of the Study:
- To investigate the structural and functional consequences of three specific cysteine mutations (R627C, C750G, C926R) in fibrillin-1.
- To explore the role of proteolytic degradation in the pathogenesis of fibrillin-1-related disorders.
Main Methods:
- Production of recombinant fibrillin-1 polypeptides with specific cysteine mutations in mammalian expression systems.
- Analysis of polypeptide structure using ultrastructural imaging, circular dichroism (CD) spectroscopy, and antibody-based assays.
- Assessment of structural stability and susceptibility to proteolysis and heat denaturation.
Main Results:
- Three mutated fibrillin-1 polypeptides (R627C, C750G, C926R) were successfully expressed and secreted.
- While overall protein folds remained largely intact, subtle structural changes were detected in R627C and C750G mutants.
- Mutants R627C and C750G exhibited increased susceptibility to proteolytic degradation.
Conclusions:
- Proteolytic degradation of mutated fibrillin-1 is a significant mechanism in the pathogenesis of Marfan syndrome and associated conditions.
- Specific cysteine mutations can induce subtle structural alterations that predispose fibrillin-1 to breakdown.
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