Notch信号通路
细胞生物学
血管生成
Hes3信号轴
Notch蛋白质类
生物
胚胎干细胞
电池极性
内皮干细胞
细胞信号
细胞
信号转导
体外
遗传学
基因
作者
Richard C.A. Sainson,Jason Aoto,Martin N. Nakatsu,Matthew Holderfield,Erin Conn,Erich Koller,Christopher C W Hughes,Richard C.A. Sainson,Jason Aoto,Martin N. Nakatsu,Matthew Holderfield,Erin Conn,Erich Koller,Christopher C W Hughes,Richard C.A. Sainson,Jason Aoto,Martin N. Nakatsu,Matthew Holderfield,Erin Conn,Erich Koller
标识
DOI:10.1096/fj.04-3172fje
摘要
ABSTRACT The requirement for notch signaling during vascular development is well‐documented but poorly understood. Embryonic and adult endothelial cells (EC) express notch and notch ligands; however, the necessity for cell‐autonomous notch signaling during angiogenesis has not been determined. During angiogenesis, EC display plasticity, whereby a subset of previously quiescent cells loses polarity and becomes migratory. To investigate the role of notch in EC, we have used a three‐dimensional in vitro system that models all of the early steps of angiogenesis. We find that newly forming sprouts are composed of specialized tip cells that guide the sprout and trunk cells that proliferate and rearrange to form intercellular lumens. Furthermore, we find that notch acts cell‐autonomously to suppress EC proliferation, thereby regulating tube diameter. In addition, when notch signaling is blocked, tip cells divide, and both daughter cells take on a tip cell phenotype, resulting in increased branching through vessel bifurcation. In contrast, notch signaling is not required for re‐establishment of EC polarity or for lumen formation. Thus, notch is used reiteratively and cell‐autonomously by EC to regulate vessel diameter, to limit branching at the tip of sprouts, and to establish a mature, quiescent phenotype.
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