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Published on: May 1, 2015
Profibrotic VEGFR3-Dependent Lymphatic Vessel Growth in Autoimmune Valvular Carditis
Victoria Osinski1, Amritha Yellamilli2,3, Maria M Firulyova4,5
1Department of Pediatrics and Center for Immunology (V.O., A.L.P., J.L.A., J.L.F., B.A.B.), University of Minnesota, Minneapolis.
Insights
New lymphatic vessels form in heart valves during autoimmune carditis, driven by VEGFR3. This process, seen in mice and human rheumatic heart disease, contributes to valve dysfunction.
Area of Science:
- Cardiovascular Biology
- Immunology
- Vascular Biology
Background:
- Rheumatic heart disease (RHD) is a leading cause of valvular heart disease globally.
- Endothelial cells (ECs) play a critical role in RHD pathogenesis, but their specific functions require further elucidation.
Purpose of the Study:
- To investigate the role and dynamics of endothelial cells in autoimmune valvular carditis.
- To characterize novel endothelial cell populations and their contribution to disease progression.
Main Methods:
- Utilized EC lineage tracing in the K/B.g7 mouse model of autoimmune valvular carditis.
- Employed single-cell RNA sequencing to profile mitral valve ECs.
- Validated findings using immunostaining, histology, and echocardiography.
- Assessed the impact of VEGFR3 inhibition and analyzed human RHD valves.
Main Results:
- Identified new capillary lymphatic vessels originating from valve surface ECs during disease.
- Discovered novel lymphatic valve ECs with a distinct profibrotic transcriptional profile.
- VEGFR3 inhibition prevented the expansion of the mitral valve lymphatic network.
- Increased valve lymphatic density correlated with worsened cardiac function and was observed in human RHD valves.
Conclusions:
- Revealed a novel mechanism of inflammation-associated, VEGFR3-dependent lymphangiogenesis in autoimmune valvular carditis.
- Demonstrated similarities between this murine model and human rheumatic heart disease.
- Highlighted the potential role of lymphatic vessels in RHD progression.
Background:
Rheumatic heart disease is the major cause of valvular heart disease in developing nations. Endothelial cells (ECs) are considered crucial contributors to rheumatic heart disease, but greater insight into their roles in disease progression is needed.
Methods:
We used a Cdh5-driven EC lineage-tracing approach to identify and track ECs in the K/B.g7 model of autoimmune valvular carditis. Single-cell RNA sequencing was used to characterize the EC populations in control and inflamed mitral valves. Immunostaining and conventional histology were used to evaluate lineage tracing and validate single-cell RNA-sequencing findings. The effects of VEGFR3 (vascular endothelial growth factor receptor 3) and VEGF-C (vascular endothelial growth factor C) inhibitors were tested in vivo. The functional impact of mitral valve disease in the K/B.g7 mouse was evaluated using echocardiography. Finally, to translate our findings, we analyzed valves from human patients with rheumatic heart disease undergoing mitral valve replacements.
Results:
Lineage tracing in K/B.g7 mice revealed new capillary lymphatic vessels arising from valve surface ECs during the progression of disease in K/B.g7 mice. Unsupervised clustering of mitral valve single-cell RNA-sequencing data revealed novel lymphatic valve ECs that express a transcriptional profile distinct from other valve EC populations including the recently identified PROX1 (Prospero homeobox protein 1)+ lymphatic valve ECs. During disease progression, these newly identified lymphatic valve ECs expand and upregulate a profibrotic transcriptional profile. Inhibiting VEGFR3 through multiple approaches prevented expansion of this mitral valve lymphatic network. Echocardiography demonstrated that K/B.g7 mice have left ventricular dysfunction and mitral valve stenosis. Valve lymphatic density increased with age in K/B.g7 mice and correlated with worsened ventricular dysfunction. Importantly, human rheumatic valves contained similar lymphatics in greater numbers than nonrheumatic controls.
Conclusions:
These studies reveal a novel mode of inflammation-associated, VEGFR3-dependent postnatal lymphangiogenesis in murine autoimmune valvular carditis, with similarities to human rheumatic heart disease.
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