磷酸化
酪氨酸磷酸化
细胞生物学
VE钙粘蛋白
原癌基因酪氨酸蛋白激酶Src
剪应力
内皮干细胞
脱磷
内皮
化学
钙粘蛋白
生物
磷酸酶
材料科学
细胞
内分泌学
生物化学
复合材料
体外
作者
Vincenza Caolo,Hanna M. Peacock,Bahar Kasaai,Geertje Swennen,Emma Gordon,Lena Claesson‐Welsh,Mark J. Post,Peter Verhamme,Elizabeth A. V. Jones
标识
DOI:10.1161/atvbaha.118.310823
摘要
Objective— Vascular fusion represents an important mechanism of vessel enlargement during development; however, its significance in postnatal vessel enlargement is still unknown. During fusion, 2 adjoining vessels merge to share 1 larger lumen. The aim of this research was to identify the molecular mechanism responsible for vascular fusion. Approach and Results— We previously showed that both low shear stress and DAPT ( N -[ N -(3,5-difluorophenacetyl)-L-alanyl]- S -phenylglycine t-butyl ester) treatment in the embryo result in a hyperfused vascular plexus and that increasing shear stress levels could prevent DAPT-induced fusion. We, therefore, investigated vascular endothelial-cadherin (VEC) phosphorylation because this is a common downstream target of low shear stress and DAPT treatment. VEC phosphorylation increases after DAPT treatment and decreased shear stress. The increased phosphorylation occurred independent of the cleavage of the Notch intracellular domain. Increasing shear stress rescues hyperfusion by DAPT treatment by causing the association of the phosphatase vascular endothelial-protein tyrosine phosphatase with VEC, counteracting VEC phosphorylation. Finally, Src (proto-oncogene tyrosine-protein kinase Src) inhibition prevents VEC phosphorylation in endothelial cells and can rescue hyperfusion induced by low shear stress and DAPT treatment. Moesin, a VEC target that was previously reported to mediate endothelial cell rearrangement during lumenization, relocalizes to cell membranes in vascular beds undergoing hyperfusion. Conclusions— This study provides the first evidence that VEC phosphorylation, induced by DAPT treatment and low shear stress, is involved in the process of fusion during vascular remodeling.
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