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Updated: Aug 15, 2025

Isolation of Endothelial Cells from the Lumen of Mouse Carotid Arteries for Single-Cell Multi-Omics Experiments
Published on: October 4, 2021
SOX4 is a novel phenotypic regulator of endothelial cells in atherosclerosis revealed by single-cell analysis
Chak Kwong Cheng1, Xiao Lin2, Yujie Pu3
1School of Biomedical Sciences and Li Ka Shing Institute of Health Science, The Chinese University of Hong Kong, 999077, Hong Kong Special Administrative Region; Heart and Vascular Institute and Shenzhen Research Institute, The Chinese University of Hong Kong, 999077, Hong Kong Special Administrative Region; Department of Biomedical Sciences, City University of Hong Kong, 999077, Hong Kong Special Administrative Region.
Insights
SOX4 is a novel regulator in endothelial dysfunction, worsening atherosclerosis. Hyperlipidemia cytokines and oscillatory blood flow increase SOX4, offering new therapeutic targets for cardiovascular disease.
Area of Science:
- Cardiovascular Biology
- Molecular Biology
- Genomics
Background:
- Atherosclerosis is a leading cause of cardiovascular mortality.
- Endothelial cell (EC) dysfunction is a key initiator of atherosclerotic pathology.
Purpose of the Study:
- Investigate the transcriptional profile of atherosclerotic aortae.
- Identify novel regulators in dysfunctional ECs.
- Provide mechanistic insights into atherosclerotic progression.
Main Methods:
- Single-cell RNA sequencing (scRNA-seq) of aortic cells from ApoE-/- mice.
- In vivo validation of SOX4 in mouse and human atherosclerotic tissues.
- Biochemical assays, immunostaining, and wire myography to assess SOX4 effects.
- In vitro hemodynamic studies on endothelial SOX4 expression.
Main Results:
- Identified two EC subsets: 'endothelial-like' and 'mesenchymal-like'.
- Confirmed SOX4 as a novel atherosclerotic marker in mouse and human arteries.
- EC-specific SOX4 overexpression promoted atherogenesis and endothelial-to-mesenchymal transition (EndoMT).
- Hyperlipidemia cytokines and oscillatory blood flow upregulated SOX4; metformin suppressed it.
Conclusions:
- SOX4 is a novel phenotypic regulator exacerbating atherogenesis via endothelial dysfunction.
- Endogenous SOX4 inducers include hyperlipidemia cytokines and oscillatory blood flow.
- Findings offer therapeutic insights for atherosclerotic diseases.
Introduction:
Atherosclerotic complications represent the leading cause of cardiovascular mortality globally. Dysfunction of endothelial cells (ECs) often initiates the pathological events in atherosclerosis.
Objectives:
In this study, we sought to investigate the transcriptional profile of atherosclerotic aortae, identify novel regulator in dysfunctional ECs and hence provide mechanistic insights into atherosclerotic progression.
Methods:
We applied single-cell RNA sequencing (scRNA-seq) on aortic cells from Western diet-fed apolipoprotein E-deficient (ApoE-/-) mice to explore the transcriptional landscape and heterogeneity of dysfunctional ECs. In vivo validation of SOX4 upregulation in ECs were performed in atherosclerotic tissues, including mouse aortic tissues, human coronary arteries, and human renal arteries. Single-cell analysis on human aortic aneurysmal tissue was also performed. Downstream vascular abnormalities induced by EC-specific SOX4 overexpression, and upstream modulators of SOX4 were revealed by biochemical assays, immunostaining, and wire myography. Effects of shear stress on endothelial SOX4 expression was investigated by in vitro hemodynamic study.
Results:
Among the compendium of aortic cells, mesenchymal markers in ECs were significantly enriched. Two EC subsets were subsequently distinguished, as the 'endothelial-like' and 'mesenchymal-like' subsets. Conventional assays consistently identified SOX4 as a novel atherosclerotic marker in mouse and different human arteries, additional to a cancer marker. EC-specific SOX4 overexpression promoted atherogenesis and endothelial-to-mesenchymal transition (EndoMT). Importantly, hyperlipidemia-associated cytokines and oscillatory blood flow upregulated, whereas the anti-diabetic drug metformin pharmacologically suppressed SOX4 level in ECs.
Conclusion:
Our study unravels SOX4 as a novel phenotypic regulator during endothelial dysfunction, which exacerbates atherogenesis. Our study also pinpoints hyperlipidemia-associated cytokines and oscillatory blood flow as endogenous SOX4 inducers, providing more therapeutic insights against atherosclerotic diseases.
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