生物
胚胎干细胞
细胞生物学
转录组
内皮干细胞
转录因子
功能(生物学)
胚胎发生
基因
基因剔除小鼠
内皮
抄写(语言学)
基因表达调控
胚胎
细胞分化
血管内皮生长因子B
遗传学
血管母细胞
嵌合体(遗传学)
脊椎动物
血管生成
细胞谱系
基因靶向
转录调控
循环系统
电池类型
解剖
基因表达
细胞
模式生物
谱系(遗传)
作者
Lihui Lin,Jing Zhong,Fuqing Jiang,Yu-xiang Wang,Lan-yue Ma,Jiaxin Yang,Yu-yan Li,Rongrong Gao,Huijian Feng,Baomei Cai,Ziyu Feng,Xin Zhou,Ya-Hai Shu,Pan Chen,Xue Wu,Chen-Leng Cai,Qiang Wang,Guangming Wu,Duanqing Pei,Shangtao Cao
出处
期刊:Cell
[Cell Press]
日期:2026-02-16
卷期号:189 (5): 1573-1590.e24
被引量:9
标识
DOI:10.1016/j.cell.2026.01.002
摘要
Endothelial cells (ECs) are essential components of the vertebrate circulatory system; however, a comprehensive atlas characterizing how ECs acquire organ-specific transcriptomic heterogeneity has not been established. Here, we generated a time-series endothelial resource covering the entirety of mouse embryonic development, including 26 time points and 8 organs. Time-series multi-organ comparison revealed emergence timing and lineage trajectory of organotypic ECs together with organ-specific genes and pathways. Using these resources, we found that most ECs showed distinguishable organ specificity before late gestation. The organotypic EC-enriched genes were associated with vascular function in the organs. Human and mouse pulmonary ECs underwent an evolutionarily conserved transcriptional transition. Endothelial-specific knockout of Casz1, a pulmonary EC-enriched transcription factor, resulted in impaired vascular growth, disturbed pulmonary endothelial organotypic differentiation, and deficient epithelial-EC crosstalk. Our work provides a powerful endothelial resource that reveals fundamental principles of organ-specific EC differentiation and uncovers previously unknown molecular mechanisms governing lung-specific vascular development.
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