Congenital heart defects research Open access Peer reviewed

Hypoxia-activated scleraxis a mediates epicardial progenitor differentiation into a unique cardiac perivascular cell type

Bjoern Perder, Yu Xia, J. Yao, Ignace Van der Wee and 12 more

Nature Communications | Aug 20, 2026

Abstract

Abstract

Abstract The epicardium is a crucial source of progenitor cells and paracrine signals that support heart development and regeneration. However, the molecular mechanisms that guide epicardial cell fate decisions remain incompletely understood. Here, we identify the transcription factor Scleraxis a (encoded by scxa ) as a key regulator of epicardial progenitor differentiation in zebrafish. Through single-cell transcriptomics, genetic lineage tracing, and cardiac injury models, we show that scxa is transiently induced in activated epicardial progenitor cells (aEPCs) during both heart regeneration and developmental coronary angiogenesis. scxa + epicardial cells primarily give rise to a previously uncharacterized cardiac population of perivascular cells marked by col18a1a , molecularly distinct from classical pericytes and vascular smooth muscle cells. We refer to this population as epicardial-derived perivascular mesenchymal cells (Epi-PMCs). These Epi-PMCs closely associate with coronary vessels and may contribute to vascular stabilization and remodeling, potentially through the anti-angiogenic but vessel-stabilizing activity of endostatin derived from collagen XVIII. Loss of scxa increases coronary vessel density. Mechanistically, we identify hypoxia and Hif1a signaling as upstream regulators of scxa , with systemic hypoxia or Hif factor stabilization robustly inducing scxa expression in the epicardium. Together, these findings uncover a hypoxia-responsive Scxa-Col18a1a axis that drives epicardial differentiation toward a vascular-supportive fate, offering new insight into the regulation of coronary vessel development and the regenerative potential of the epicardium.

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Authors

Researchers on this paper

Bjoern Perder

first | Cornell University

Yu Xia

middle

J. Yao

middle | ORCID 0009-0001-1640-9172

Ignace Van der Wee

middle | Cornell University

Miaoyan Qiu

middle

Alvin Gea Chen Yao

middle | Cornell University

Muhammad Naeem

middle | Cornell University

Paul Zumbo

middle | Cornell University

Avi Yakubov

middle | Cornell University

Stephanie Tsai

middle | Harvard University | ORCID 0000-0001-7549-3418

Kazu Kikuchi

middle | National Cerebral and Cardiovascular Center | ORCID 0000-0002-4681-4275

Jenna L. Galloway

middle | Harvard University

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Citation

BibTeX

@article{Perder2026Hypoxia,
  title = {Hypoxia-activated scleraxis a mediates epicardial progenitor differentiation into a unique cardiac perivascular cell type},
  author = {Bjoern Perder and Yu Xia and J. Yao and Ignace Van der Wee and Miaoyan Qiu and Alvin Gea Chen Yao and Muhammad Naeem and Paul Zumbo and Avi Yakubov and Stephanie Tsai and Kazu Kikuchi and Jenna L. Galloway and Doron Betel and Todd Evans and Michael R. Harrison and Jingli Cao},
  journal = {Nature Communications},
  year = {2026},
  doi = {10.1038/s41467-026-77008-y},
  url = {https://doi.org/10.1038/s41467-026-77008-y}
}

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