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Updated: Apr 29, 2026

Murine Model of Thoracic Aortic Dissection Induced by Oral β-Aminopropionitrile and Subcutaneous Angiotensin II Infusion
Published on: May 16, 2025
Structural and transcriptomic alterations underlying the progression of aortic dissection in Fbn1G234D/G234D mice
Md Al Amin Sheikh1,2, Kenichi Kimura3, Eri Motoyama1
1Life Science Center for Survival Dynamics, Tsukuba Advanced Research Alliance (TARA), University of Tsukuba, 1-1-1 Tennodai, Tsukuba, Ibaraki, 305-8577, Japan.
Abstract:
Aortic dissection (AD) is characterized by separation within the medial layers of the aortic wall. Pathogenic variants in the fibrillin-1 gene (FBN1), which cause Marfan syndrome, represent a major genetic cause of AD. In a recently established Fbn1G234D/G234D mouse model, intimomedial tears develop at 3 weeks of age, and 50% of mice die by 5 weeks from aortic rupture. Despite this severe phenotype, the magnitude and expansion of AD lesions, as well as the molecular alterations within the medial layers remain incompletely understood. In this study, we used three-dimensional propagation-based X-ray phase-contrast synchrotron imaging for reconstruction of the ascending aortas, together with single-cell RNA sequencing (scRNA-seq) analysis in Fbn1G234D/G234D mice. Synchrotron imaging revealed 1-2 elastic lamellar breaks evolved into widespread disruptions spanning the entire elastic lamellae, accompanied by localized adventitial thickening. scRNA-seq analysis followed by immunofluorescence staining showed upregulation of fibronectin (Fn1) in Fbn1G234D/G234D smooth muscle cells (SMCs). Consistently, increased FN1 expression was observed in human non-heritable AD samples. Furthermore, enhanced expression of fibronectin receptors and activation of focal adhesion kinase signaling suggested augmented extracellular matrix-SMC interactions during disease progression. These findings indicate that AD progression involves coordinated medial structural failure, adventitial remodeling, and fibronectin-associated SMC dysfunction.
Insights
Aortic dissection (AD) involves aortic wall separation. This study reveals fibronectin upregulation in smooth muscle cells contributes to AD progression, alongside structural changes in the aorta.
Area of Science:
- Cardiovascular Biology
- Genetics
- Biomaterials Science
Background:
- Aortic dissection (AD) is a tear in the aorta's inner layer, often linked to fibrillin-1 gene (FBN1) mutations causing Marfan syndrome.
- A specific Fbn1 mouse model exhibits severe AD phenotypes, including aortic rupture, but the underlying molecular mechanisms and lesion progression are not fully understood.
Purpose of the Study:
- To investigate the detailed structural and molecular changes in aortic dissection using a Fbn1-mutant mouse model.
- To elucidate the role of fibronectin and associated signaling pathways in AD pathogenesis.
Main Methods:
- Utilized 3D X-ray phase-contrast synchrotron imaging for high-resolution aortic reconstruction.
- Employed single-cell RNA sequencing (scRNA-seq) to analyze molecular alterations in aortic tissues.
- Performed immunofluorescence staining to validate protein expression changes.
Main Results:
- Synchrotron imaging demonstrated progression from initial elastic lamellar breaks to widespread aortic wall disruption and adventitial thickening.
- scRNA-seq identified fibronectin (Fn1) upregulation in smooth muscle cells (SMCs) of the Fbn1 mouse model.
- Increased FN1 expression was also found in human non-heritable AD samples, alongside enhanced fibronectin receptor expression and focal adhesion kinase signaling.
Conclusions:
- AD progression involves complex interplay between medial structural failure, adventitial remodeling, and fibronectin-mediated SMC dysfunction.
- Fibronectin upregulation in SMCs is a key molecular event in AD pathogenesis, potentially serving as a therapeutic target.
- This study provides novel insights into the cellular and molecular mechanisms driving aortic dissection progression.
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