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Premature aortic smooth muscle cell differentiation contributes to matrix dysregulation in Marfan Syndrome
Matthew Dale1, Matthew P Fitzgerald1, Zhibo Liu1
1Department of Surgery, University of Nebraska Medical Center, Omaha, Nebraska, United States of America.
Abstract:
Thoracic aortic aneurysm and dissection are life-threatening complications of Marfan syndrome (MFS). Studies of human and mouse aortic samples from late stage MFS demonstrate increased TGF-β activation/signaling and diffuse matrix changes. However, the role of the aortic smooth muscle cell (SMC) phenotype in early aneurysm formation in MFS has yet to be fully elucidated. As our objective, we investigated whether an altered aortic SMC phenotype plays a role in aneurysm formation in MFS. We describe previously unrecognized concordant findings in the aortas of a murine model of MFS, mgR, during a critical and dynamic phase of early development. Using Western blot, gelatin zymography, and histological analysis, we demonstrated that at postnatal day (PD) 7, before aortic TGF-β levels are increased, there is elastic fiber fragmentation/disorganization and increased levels of MMP-2 and MMP-9. Compared to wild type (WT) littermates, aortic SMCs in mgR mice express higher levels of contractile proteins suggesting a switch to a more mature contractile phenotype. In addition, tropoelastin levels are decreased in mgR mice, a finding consistent with a premature switch to a contractile phenotype. Proliferation assays indicate a decrease in the proliferation rate of mgR cultured SMCs compared to WT SMCs. KLF4, a regulator of smooth muscle cell phenotype, was decreased in aortic tissue of mgR mice. Finally, overexpression of KLF4 partially reversed this phenotypic change in the Marfan SMCs. This study indicates that an early phenotypic switch appears to be associated with initiation of important metabolic changes in SMCs that contribute to subsequent pathology in MFS.
Insights
Early changes in aortic smooth muscle cell (SMC) phenotype, including a switch to a mature contractile state, precede aneurysm formation in Marfan syndrome (MFS). This study reveals a key factor in MFS aortic disease initiation.
Area of Science:
- Cardiovascular Biology
- Connective Tissue Disorders
- Cellular Phenotype Research
Background:
- Marfan syndrome (MFS) is linked to life-threatening thoracic aortic aneurysms and dissections.
- Late-stage MFS shows increased TGF-β signaling and matrix degradation, but early SMC role is unclear.
Purpose of the Study:
- To investigate the role of altered aortic smooth muscle cell (SMC) phenotype in early aneurysm formation in Marfan syndrome (MFS).
Main Methods:
- Utilized mgR murine model of MFS for early developmental stage analysis.
- Employed Western blot, gelatin zymography, and histological analysis.
- Performed SMC proliferation assays and KLF4 expression analysis.
Main Results:
- Early elastic fiber fragmentation and increased MMP-2/MMP-9 observed before elevated TGF-β.
- Aortic SMCs in mgR mice showed a premature switch to a mature contractile phenotype with decreased tropoelastin.
- Reduced SMC proliferation and decreased KLF4 levels were noted; KLF4 overexpression partially reversed the phenotype.
Conclusions:
- An early SMC phenotypic switch is associated with metabolic changes initiating aortic pathology in MFS.
- This finding highlights a potential therapeutic target for preventing MFS-related aortic disease progression.