Single-cell RNA-seq profiling of mouse endothelial cells in response to pulmonary arterial hypertension

Author:

Rodor Julie1,Chen Shiau-Haln1,Scanlon Jessica P1,Monteiro João P1,Caudrillier Axelle1,Sweta Sweta1,Stewart Katherine Ross1,Shmakova Alena1,Dobie Ross2,Henderson Beth E P2,Stewart Kevin1,Hadoke Patrick W F1,Southwood Mark3,Moore Stephen D3,Upton Paul D3,Morrell Nick W3,Li Ziwen1,Chan Stephen Y4,Handen Adam4,Lafyatis Robert4,de Rooij Laura P M H5,Henderson Neil C2,Carmeliet Peter5,Spiroski Ana-Mishel1,Brittan Mairi1,Baker Andrew H1

Affiliation:

1. The Queen’s Medical Research Institute, Centre for Cardiovascular Science, University of Edinburgh, Edinburgh, EH16 4TJ, UK

2. The Queen’s Medical Research Institute, Centre for Inflammation Research, University of Edinburgh, Edinburgh, EH16 4TJ, UK

3. Department of Medicine, School of Clinical Medicine, University of Cambridge, Cambridge, United Kingdom

4. Center for Pulmonary Vascular Biology and Medicine, Pittsburgh Heart, Lung, Blood Vascular Medicine Institute, Divisions of Cardiology and Rheumatology, Department of Medicine, University of Pittsburgh School of Medicine and University of Pittsburgh Medical Center, Pittsburgh, Pennsylvania, USA

5. Laboratory of Angiogenesis and Vascular Metabolism, Center for Cancer Biology, and Department of Oncology and Leuven Cancer Institute (LKI), VIB and KU Leuven, 3000, Leuven, Belgium

Abstract

Abstract Aims Endothelial cell dysfunction drives the initiation and pathogenesis of pulmonary arterial hypertension (PAH). We aimed to characterise endothelial cell (EC) dynamics in PAH at single-cell resolution. Methods and Results We carried out single-cell RNA sequencing (scRNA-seq) of lung ECs isolated from an EC lineage-tracing mouse model in Control and SU5416/Hypoxia-induced PAH conditions. EC populations corresponding to distinct lung vessel types, including two discrete capillary populations, were identified in both Control and PAH mice. Differential gene expression analysis revealed global PAH-induced EC changes that were confirmed by bulk RNA-seq. This included upregulation of the major histocompatibility complex class II pathway, supporting a role for ECs in the inflammatory response in PAH. We also identified a PAH response specific to the second capillary EC population including upregulation of genes involved in cell death, cell motility and angiogenesis. Interestingly, four genes with genetic variants associated with PAH were dysregulated in mouse ECs in PAH. To compare relevance across PAH models and species, we performed a detailed analysis of EC heterogeneity and response to PAH in rats and humans through whole-lung PAH scRNA-seq datasets, revealing that 51% of up-regulated mouse genes were also up-regulated in rat or human PAH. We identified promising new candidates to target endothelial dysfunction including CD74, the knockdown of which regulates EC proliferation and barrier integrity in vitro. Finally, with an in silico cell ordering approach, we identified zonation-dependent changes across the arteriovenous axis in mouse PAH and showed upregulation of the Serine/threonine-protein kinase Sgk1 at the junction between the macro- and micro-vasculature. Conclusions This study uncovers PAH-induced EC transcriptomic changes at a high resolution, revealing novel targets for potential therapeutic candidate development.

Publisher

Oxford University Press (OUP)

Subject

Physiology (medical),Cardiology and Cardiovascular Medicine,Physiology

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