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Yao, A. G. C.

Publications and source records attributed to Yao, A. G. C..

2 recordsLinked to original sources

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

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.

developmental biology↗

Zebrafish otic vesicle and mouse epididymis as model systems for studying columnar epithelial cell division

Epithelial cell division maintains tissue architecture through coordinated nuclear migration, cell shape changes, and spindle orientation. In columnar epithelia, interkinetic nuclear migration (INM) involves apical nuclear translocation in G2 phase and basal return post-mitosis, yet its regulation remains incompletely understood in vertebrates, in part due to limited in vivo live-imaging models. In this methodological study, we adapted the zebrafish embryonic otic vesicle as an in vivo model to investigate cell division dynamics in simple columnar epithelium using high-resolution live imaging and genetic tools. We demonstrated that apical INM initiates in mid-to-late G2 and is driven by dynein, not myosin II. Mitotic rounding is achieved via actomyosin-mediated basolateral constriction while maintaining basal attachment. Inhibiting myosin II impairs rounding and planar division, causing apical retention of daughter cells, suggesting planar division ensures proper integration. We additionally analyzed the mouse epididymal epithelium, a simple columnar epithelial tissue, to allow cross-species comparison of nuclear migration dynamics. Together, these optimized in vivo vertebrate models uncover conserved and tissue-specific mechanisms underlying epithelial organization and function, and importantly, provide tools for deeper mechanistic dissection in the future.

cell biology↗