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Ma, A. Z.

Publications and source records attributed to Ma, A. Z..

2 recordsLinked to original sources

Human foregut morphogenesis exhibits murine-like molecular patterning but avian-like epithelial architecture

Animal models are indispensable for understanding human development, yet evolutionary relatedness does not ensure developmental similarity at all biological scales. In tracheal-esophageal separation (TES), which splits the embryonic foregut into respiratory and digestive tubes in all tetrapods, genetic mouse models rarely reproduce the predominant human malformation, esophageal atresia with tracheoesophageal fistula (EA/TEF). By comparing human, mouse, and chick foreguts, we uncover a mosaic pattern of developmental conservation. The human foregut resembles the mouse in its molecular patterning, but more closely resembles the chick in its densely pseudostratified epithelial architecture and the greater number of cells comprising the epithelial septum. Live imaging shows that epithelial pseudostratification, which depends on actomyosin contractility, is associated with slower septum resolution. Cross-species single-cell transcriptomics analysis reveals lower expression of a myosin regulatory light chain and N-cadherin, and higher expression of a myosin phosphatase subunit in the mouse foregut epithelium than in the human and chick, suggesting candidate molecular mechanisms of these morphological differences. Induction of ectopic BMP signaling through in vivo electroporation in chick embryos recapitulated an EA/TEF-like malformation. These findings suggest that human foregut morphogenesis combines murine-like patterning and avian-like epithelial organization. The chick embryo thus represents an important complementary model for investigating epithelial mechanisms underlying human foregut malformations.

cell biology↗

Coordinated immune-epithelial dynamics in the nasal epithelium protect against respiratory virus infection

Epithelial remodeling is a hallmark of host antiviral responses that strengthen barrier defenses against infection. Our current understanding of viral pathophysiology within the nasal epithelium, the initial site of most respiratory viral infections, remains incomplete due to limited understanding of the native tissue architecture and protective epithelial remodeling during immune events. Leveraging coronavirus disease 2019 (COVID-19) as a model, we applied spatial multi-omics on nasal cross-sectional tissues to characterize the immune-epithelial landscape during infection, identifying a coordinated increase in goblet cells and suppressive macrophages associated with elevated IL13 in the immune compartment. Our results further reveal that goblet cell and suppressive macrophage enrichment are spatially linked in proximity to IL13-expressing CD4 T cells, consistent with IL13-driven remodeling in situ. Using a primary human nasal air-liquid interface model, we demonstrate that IL13 alone is sufficient to remodel epithelial composition and morphology, subsequently restricting viral infection by reshaping the apical mucus barrier of the nasal epithelium. Our findings uncover a spatially organized, IL13-driven circuit for immune-epithelial remodeling as a protective barrier against respiratory viral infections.

immunology↗