ArticleCardiovascular research2025
Mapping disease-specific vascular cell populations responsible for obliterative arterial remodelling during the development of pulmonary arterial hypertension.
Article in Cardiovascular research, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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Who cites it
8 citing papers in PubMed.
- From Heterogeneity to Plasticity: Endothelial Dynamics in Lung Disease.Pulmonary circulation · 2026Review
- Adventitial Niches, Complement and Inflammation in Pulmonary Vascular Disease: Current Status and Future Directions.Comprehensive Physiology · 2026Review
- NF-κB signaling as a critical inflammatory node in pulmonary arterial hypertension: from vascular remodeling to right heart failure.Frontiers in immunology · 2026Review
- Endothelial Heterogeneity in Pulmonary Hypertension.Arteriosclerosis, thrombosis, and vascular biology · 2026Review
- Circadian clock-gut microbiota axis in pulmonary hypertension: linking gut-lung crosstalk, immune timing and vascular remodeling.Frontiers in physiology · 2026Review
- Mapping myocarditis in three dimensions.Cardiovascular research · 2025Article
- Roles of Lipid Metabolism in Pulmonary Hypertension: Friend or Foe?Biomolecules · 2025Review
- The devil is in the details: addressing lung cell heterogeneity in sugen-hypoxia rats and its relevance to pulmonary arterial hypertension.Cardiovascular research · 2025Article
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Abstract
aimsPulmonary arterial hypertension (PAH) is a lethal pulmonary vascular disease characterized by arteriolar pruning and occlusive vascular remodelling leading to increased pulmonary vascular resistance and eventually right heart failure. While endothelial cell (EC) injury and apoptosis are known triggers for this disease, the mechanisms by which they lead to complex arterial remodelling remain obscure. We employed multiplexed single-cell RNA sequencing at multiple timepoints during the onset and progression of disease in a model of severe PAH to identify mechanisms involved in the development of occlusive arterial lesions. METHODS AND
resultsSingle-cell transcriptional analysis resolved 44 global lung cell populations, with widespread early transcriptomic changes at 1 week affecting endothelial, stromal, and immune cell populations. In particular, two EC clusters were greatly expanded during PAH development and were identified as being disease specific: a relatively de-differentiated (dD) EC population that was enriched for Cd74 expression while exhibiting a loss of endothelial identity; and an activated arterial EC (aAEC) population that uniquely exhibited persistent differential gene expression throughout PAH development consistent with a growth regulated state. dDECs were primed to undergo endothelial-mesenchymal transition as evidenced by reduced activity of master EC transcription factors, Erg and Fli1, and further supported by RNA velocity analysis showing vectors leading to fibroblast clusters. Of note, aAECs exhibited high expression of Tm4sf1, a gene implicated in cancer cell growth, that was also expressed by a smooth muscle (SM)-like pericyte cluster, and were highly localized to regions of arterial remodelling in both the rat model and PAH patients, contributing to intimal occlusive lesions and SM-like pericytes forming bands of medial muscularization.
conclusionTogether these findings implicate disease-specific vascular cells in PAH progression and suggest that TM4SF1 may be a novel therapeutic target for arterial remodelling.
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