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Published on: August 11, 2023
Microvascular Endothelial Cells License APS Vasculopathy Through YAP1- and CCN2-Mediated Signaling
Hui Shi1,2, Wenying Liang2, Zhixia Yang1
1Department of Rheumatology and Immunology, Ruijin Hospital, School of Medicine, Shanghai Jiao Tong University, Shanghai, China (H.S., Z.Y., Z.D., H.P., C.Y.).
Background:
Whereas antiphospholipid syndrome (APS) is best known for increasing the risk of macrovascular thrombosis, APS vasculopathy is characterized by the abnormal proliferation of endothelial and smooth muscle cells, leading to occlusion of small blood vessels in the skin, kidneys, and heart, among other organs. The underlying mechanisms remain unclear, and targeted treatment options for patients with APS are lacking.
Methods:
To identify and analyze APS microvascular endothelial cells (MVECs), skin biopsies of patients with APS complicated by livedo racemosa were characterized using single-cell RNA sequencing. CCN1 (cellular communication network factor 1) and CCN2 were identified in skin and kidney biopsies by immunofluorescence microscopy and in plasma by ELISA. Healthy dermal MVECs were cultured with APS patient-derived serum or immunoglobulin G (IgG), and relevant signaling pathways were characterized using quantitative PCR, immunoblotting, and immunofluorescence microscopy. The proliferation and migration of vascular smooth muscle cells were determined after exposure to conditioned medium from APS IgG-stimulated MVECs. A mouse model of APS IgG-accelerated neointima formation was developed. Anti-CCN2 monoclonal antibodies were tested in vascular smooth muscle cell functional assays and the mouse model.
Results:
Increased endothelial cell expression of CCN1 and CCN2 was identified by single-cell RNA sequencing and further confirmed in APS skin by microscopy as well as in APS plasma by ELISA. Exposure of healthy MVECs to patient IgG triggered the upregulation of CCN1 and CCN2 via Toll-like receptor 4- and YAP1 (yes-associated protein 1)-mediated signaling. CCN2, originating from APS IgG-stimulated MVECs led to the proliferation and migration of vascular smooth muscle cells, phenotypes that were inhibited by an anti-CCN2 antibody or depletion of EGFR (epidermal growth factor receptor). We further observed increased expression of CCN2, along with evidence of YAP1 nuclear translocation, in kidney vessels of APS nephropathy biopsies. Finally, CCN2 inhibition with an anti-CCN2 monoclonal antibody significantly reduced neointima thickening and cell proliferation in a mouse model of APS IgG-accelerated neointima formation.
Conclusions:
This study revealed activation of YAP1-mediated signaling in APS dermal microvessels and demonstrated that the YAP1 target CCN2 plays a role in facilitating pro-proliferative communication between MVECs and vascular smooth muscle cells. These findings offer insights into the cellular and molecular mechanisms underlying APS vasculopathy, providing potential therapeutic targets for patients.
Insights
Antiphospholipid syndrome (APS) vasculopathy involves abnormal cell proliferation. This study identifies CCN2 as a key mediator, suggesting anti-CCN2 antibodies as a potential therapeutic strategy for APS.
Area of Science:
- Vascular Biology
- Immunology
- Cellular Signaling
Background:
- Antiphospholipid syndrome (APS) is linked to macrovascular thrombosis.
- APS vasculopathy involves microvascular occlusion due to endothelial and smooth muscle cell proliferation.
- Mechanisms and targeted treatments for APS vasculopathy are currently lacking.
Purpose of the Study:
- To investigate the cellular and molecular mechanisms of APS vasculopathy.
- To identify key mediators involved in APS microvascular endothelial cell (MVEC) dysfunction.
- To explore potential therapeutic targets for APS.
Main Methods:
- Single-cell RNA sequencing of APS patient skin biopsies.
- Immunofluorescence microscopy and ELISA to detect CCN1 and CCN2.
- In vitro culture of MVECs with APS patient IgG to analyze signaling pathways (TLR4, YAP1).
- Assessment of vascular smooth muscle cell proliferation and migration.
- Evaluation of anti-CCN2 monoclonal antibodies in vitro and in an APS mouse model.
Main Results:
- Elevated CCN1 and CCN2 expression in APS endothelial cells and plasma.
- APS patient IgG induced CCN1 and CCN2 upregulation via TLR4 and YAP1 signaling.
- CCN2 promoted vascular smooth muscle cell proliferation and migration, inhibited by anti-CCN2 antibody.
- Increased CCN2 and YAP1 nuclear translocation observed in APS kidney biopsies.
- Anti-CCN2 antibody treatment reduced neointima formation in an APS mouse model.
Conclusions:
- YAP1-mediated signaling is activated in APS dermal microvessels.
- CCN2, a YAP1 target, mediates pro-proliferative signaling between MVECs and vascular smooth muscle cells in APS.
- Targeting CCN2 offers a potential therapeutic strategy for APS vasculopathy.
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