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Calcification of Vascular Smooth Muscle Cells and Imaging of Aortic Calcification and Inflammation
Published on: May 31, 2016
In vivo phenotypic vascular dysfunction extends beyond the aorta in a mouse model for fibrillin-1 (Fbn1) mutation
T Curry1,2, M E Barrameda3, T Currier Thomas4,5,6,7,8
1College of Medicine-Phoenix, University of Arizona, Phoenix, AZ, USA.
Abstract:
In individuals with Marfan Syndrome (MFS), fibrillin-1 gene (FBN1) mutations can lead to vascular wall weakening and dysfunction. The experimental mouse model of MFS (Fbn1C1041G/+) has been advantageous in investigating MFS-associated life-threatening aortic aneurysms. It is well established that the MFS mouse model exhibits an accelerated-aging phenotype in elastic organs like the aorta, lung, and skin. However, the impact of Fbn1 mutations on the in vivo function and structure of various artery types with the consideration of sex and age, has not been adequately explored in real-time and a clinically relevant context. In this study, we investigate if Fbn1 mutation contributes to sex-dependent alterations in central and cerebral vascular function similar to phenotypic changes associated with normal aging in healthy control mice. In vivo ultrasound imaging of central and cerebral vasculature was performed in 6-month-old male and female MFS and C57BL/6 mice and sex-matched 12-month-old (middle-aged) healthy control mice. Our findings confirm aortic enlargement (aneurysm) and wall stiffness in MFS mice, but with exacerbation in male diameters. Coronary artery blood flow velocity (BFV) in diastole was not different but left pulmonary artery BFV was decreased in MFS and 12-month-old control mice regardless of sex. At 6 months of age, MFS male mice show decreased posterior cerebral artery BFV as compared to age-matched control males, with no difference observed between female cohorts. Reduced mitral valve early-filling velocities were indicated in MFS mice regardless of sex. Male MFS mice also demonstrated left ventricular hypertrophy. Overall, these results underscore the significance of biological sex in vascular function and structure in MFS mice, while highlighting a trend of pre-mature vascular aging phenotype in MFS mice that is comparable to phenotypes observed in older healthy controls. Furthermore, this research is a vital step in understanding MFS's broader implications and sets the stage for more in-depth future analyses, while providing data-driven preclinical justification for re-evaluating diagnostic approaches and therapeutic efficacy.
Insights
Marfan syndrome (MFS) with fibrillin-1 gene (FBN1) mutations accelerates vascular aging, particularly in males. This study reveals sex-dependent vascular dysfunction in MFS mice, mimicking premature aging phenotypes.
Area of Science:
- Cardiovascular Biology
- Genetics
- Aging Research
Background:
- Marfan syndrome (MFS), caused by fibrillin-1 gene (FBN1) mutations, leads to vascular wall weakening and aortic aneurysms.
- MFS mouse models exhibit accelerated aging in elastic organs, but sex and age impacts on in vivo vascular function are underexplored.
Purpose of the Study:
- To investigate sex-dependent alterations in central and cerebral vascular function in MFS mice compared to aging controls.
- To assess the impact of FBN1 mutations on vascular structure and function across different ages and sexes.
Main Methods:
- In vivo ultrasound imaging of central and cerebral vasculature in 6-month-old male and female MFS and control mice.
- Comparison with sex-matched 12-month-old healthy control mice to evaluate aging effects.
Main Results:
- MFS mice showed aortic enlargement and stiffness, more pronounced in males.
- Decreased posterior cerebral artery blood flow velocity in 6-month-old MFS males compared to controls.
- Reduced mitral valve early-filling velocities and left ventricular hypertrophy observed in male MFS mice.
Conclusions:
- Biological sex significantly influences vascular function and structure in MFS mice.
- MFS induces a premature vascular aging phenotype comparable to older healthy controls.
- Findings support re-evaluating MFS diagnostics and therapeutic strategies considering sex differences.

