GATA4-dependent organ-specific endothelial differentiation controls liver development and embryonic hematopoiesis

细胞生物学 生物 胚胎干细胞 关贸总协定 异位表达 肝星状细胞 下调和上调 造血 细胞外基质 基底膜 祖细胞 血管生成 免疫学 转录因子 癌症研究 干细胞 内分泌学 细胞培养 基因 生物化学 遗传学
作者
Cyrill Géraud,Philipp‐Sebastian Koch,Johanna Zierow,Kay Klapproth,Katrin Busch,Victor Olsavszky,Thomas Leibing,Alexandra Demory,Friederike Ulbrich,Miriam Diett,Sandhya Singh,Carsten Sticht,Katja Breitkopf‐Heinlein,Karsten Richter,Sanna‐Maria Karppinen,Taina Pihlajaniemi,Bernd Arnold,Hans-Reimer Rodewald,Hellmut G. Augustin,Kai Schledzewski
出处
期刊:Journal of Clinical Investigation [American Society for Clinical Investigation]
卷期号:127 (3): 1099-1114 被引量:172
标识
DOI:10.1172/jci90086
摘要

Microvascular endothelial cells (ECs) are increasingly recognized as organ-specific gatekeepers of their microenvironment. Microvascular ECs instruct neighboring cells in their organ-specific vascular niches through angiocrine factors, which include secreted growth factors (angiokines), extracellular matrix molecules, and transmembrane proteins. However, the molecular regulators that drive organ-specific microvascular transcriptional programs and thereby regulate angiodiversity are largely elusive. In contrast to other ECs, which form a continuous cell layer, liver sinusoidal ECs (LSECs) constitute discontinuous, permeable microvessels. Here, we have shown that the transcription factor GATA4 controls murine LSEC specification and function. LSEC-restricted deletion of Gata4 caused transformation of discontinuous liver sinusoids into continuous capillaries. Capillarization was characterized by ectopic basement membrane deposition, formation of a continuous EC layer, and increased expression of VE-cadherin. Correspondingly, ectopic expression of GATA4 in cultured continuous ECs mediated the downregulation of continuous EC-associated transcripts and upregulation of LSEC-associated genes. The switch from discontinuous LSECs to continuous ECs during embryogenesis caused liver hypoplasia, fibrosis, and impaired colonization by hematopoietic progenitor cells, resulting in anemia and embryonic lethality. Thus, GATA4 acts as master regulator of hepatic microvascular specification and acquisition of organ-specific vascular competence, which are indispensable for liver development. The data also establish an essential role of the hepatic microvasculature in embryonic hematopoiesis.
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