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Published on: September 9, 2016
Protective Role of Endothelial Fibulin-4 in Valvulo-Arterial Integrity
Tram Anh Vu Nguyen1,2, Caroline Antunes Lino3, Huynh Thuy Hang1,4
1Life Science Center for Survival Dynamics, Tsukuba Advanced Research Alliance University of Tsukuba Ibaraki Japan.
Insights
Endothelial fibulin-4 (Fbln4) is crucial for maintaining blood vessel and heart valve integrity. Its absence exacerbates thoracic aortic aneurysms and causes valve thickening, highlighting its role in valvulo-arterial health.
Area of Science:
- Vascular Biology
- Cardiovascular Research
- Connective Tissue Biology
Background:
- Vessel wall homeostasis relies on endothelial cells (ECs), smooth muscle cells, and fibroblasts.
- Fibulin-4 (Fbln4) deficiency in smooth muscle cells causes thoracic aortic aneurysms.
- The role of Fbln4 in ECs and valvulo-arterial integrity remains unclear.
Purpose of the Study:
- Investigate the function of Fbln4 in ECs.
- Determine the impact of Fbln4 deficiency in ECs and smooth muscle cells on valvulo-arterial integrity and aneurysm progression.
Main Methods:
- Gene silencing of FBLN4 in human aortic ECs.
- Generation and analysis of Fbln4 double knockout (DKO) mice (ECs and smooth muscle cells).
- Histology, echocardiography, Western blotting, RNA sequencing, and immunostaining were employed.
Main Results:
- FBLN4 knockdown in ECs induced mesenchymal transition with upregulated genes like TAGLN and MYL9.
- DKO mice exhibited worsened thoracic aortic aneurysms and upregulated mechanical stress markers (Thbs1).
- DKO mice developed progressive aortic valve thickening, collagen deposition, turbulent flow, and upregulated genes linked to endothelial-to-mesenchymal transition, inflammation, and fibrosis.
Conclusions:
- Endothelial Fbln4 plays a critical role in maintaining valvulo-arterial integrity.
- Endothelial Fbln4 deficiency significantly influences thoracic aortic aneurysm progression and valvular pathology.
Abstract:
Background Homeostasis of the vessel wall is cooperatively maintained by endothelial cells (ECs), smooth muscle cells, and adventitial fibroblasts. The genetic deletion of fibulin-4 (Fbln4) in smooth muscle cells (SMKO) leads to the formation of thoracic aortic aneurysms with the disruption of elastic fibers. Although Fbln4 is expressed in the entire vessel wall, its function in ECs and relevance to the maintenance of valvulo-arterial integrity are not fully understood. Methods and Results Gene silencing of FBLN4 was conducted on human aortic ECs to evaluate morphological changes and gene expression profile. Fbln4 double knockout (DKO) mice in ECs and smooth muscle cells were generated and subjected to histological analysis, echocardiography, Western blotting, RNA sequencing, and immunostaining. An evaluation of the thoracic aortic aneurysm phenotype and screening of altered signaling pathways were performed. Knockdown of FBLN4 in human aortic ECs induced mesenchymal cell-like changes with the upregulation of mesenchymal genes, including TAGLN and MYL9. DKO mice showed the exacerbation of thoracic aortic aneurysms when compared with those of SMKO and upregulated Thbs1, a mechanical stress-responsive molecule, throughout the aorta. DKO mice also showed progressive aortic valve thickening with collagen deposition from postnatal day 14, as well as turbulent flow in the ascending aorta. Furthermore, RNA sequencing and immunostaining of the aortic valve revealed the upregulation of genes involved in endothelial-to-mesenchymal transition, inflammatory response, and tissue fibrosis in DKO valves and the presence of activated valve interstitial cells. Conclusions The current study uncovers the pivotal role of endothelial fibulin-4 in the maintenance of valvulo-arterial integrity, which influences thoracic aortic aneurysm progression.
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