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In vivo studies of mutant fibrillin-1 microfibrils
Noe L Charbonneau1, Eric J Carlson, Sara Tufa
1Shriners Hospital for Children, Oregon Health & Science University, Portland, Oregon 97239, USA.
Abstract:
In humans, mutations in fibrillin-1 result in a variety of genetic disorders with distinct clinical phenotypes. While most of the known mutations in fibrillin-1 cause Marfan syndrome, a number of other mutations lead to clinical features unrelated to Marfan syndrome. Pathogenesis of Marfan syndrome is currently thought to be driven by mechanisms due to haploinsufficiency of wild-type fibrillin-1. However, haploinsufficiency-driven mechanisms cannot explain the distinct phenotypes found in other fibrillinopathies. To test the hypothesis that mutations in fibrillin-1 cause disorders through primary effects on microfibril structure, two different mutations were generated in Fbn1 in mice. One mutation leads to a truncated fibrillin-1 molecule that is tagged with green fluorescent protein, allowing visualization of mutant fibrillin-1 incorporated into microfibrils. In heterozygosity, these mutant mice demonstrate progressive fragmentation of the aortic elastic lamellae and also display fragmentation of microfibrils in other tissues. Fibrillin-2 epitopes are also progressively revealed in these mice, suggesting that fibrillin-2 immunoreactivity can serve as a marker for microfibril degradation. In contrast, a second mutation (in-frame deletion of the first hybrid domain) in fibrillin-1 results in stable microfibrils, demonstrating that fibrillin-1 molecules are not required to be in perfect register for microfibril structure and function and that the first hybrid domain is dispensable for microfibril assembly. Taken together, these results suggest that perturbation of microfibril structure may underlie one of the major features of the Marfan syndrome: fragmentation of aortic elastic lamellae.
Insights
Mutations in fibrillin-1 cause genetic disorders by disrupting microfibril structure. This study reveals that altered microfibrils, not just haploinsufficiency, underlie Marfan syndrome features like aortic fragmentation.
Area of Science:
- Genetics
- Molecular Biology
- Biochemistry
Background:
- Mutations in fibrillin-1 (FBN1) cause diverse genetic disorders, including Marfan syndrome.
- Current understanding suggests Marfan syndrome pathogenesis involves fibrillin-1 haploinsufficiency.
- This model fails to explain distinct phenotypes in other fibrillinopathies.
Purpose of the Study:
- To investigate if fibrillin-1 mutations cause disorders through primary effects on microfibril structure.
- To differentiate between haploinsufficiency and structural perturbation mechanisms.
Main Methods:
- Generation of two distinct Fbn1 mutations in mice.
- One mutation produced a truncated, fluorescently tagged fibrillin-1 for visualization.
- Analysis of microfibril structure, aortic elastic lamellae, and fibrillin-2 epitopes in mutant mice.
Main Results:
- A truncated fibrillin-1 mutation led to progressive fragmentation of aortic elastic lamellae and microfibrils in various tissues.
- Fibrillin-2 epitopes were revealed, suggesting a marker for microfibril degradation.
- A second mutation (deletion in the first hybrid domain) resulted in stable microfibrils, indicating flexibility in fibrillin-1 assembly.
Conclusions:
- Perturbation of microfibril structure is a key mechanism underlying Marfan syndrome features, such as aortic elastic lamellae fragmentation.
- Fibrillin-1 molecules do not require perfect register for microfibril integrity.
- The first hybrid domain is not essential for microfibril assembly.
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