Fluid shear stress induces differentiation of Flk-1-positive embryonic stem cells into vascular endothelial cells in vitro

细胞生物学 胚胎干细胞 内皮干细胞 生物 细胞分化 壁细胞 干细胞 化学 分子生物学 体外 生物化学 基因
作者
Kimiko Yamamoto,Takaaki Sokabe,Tetsuro Watabe,Kohei Miyazono,Jun K. Yamashita,Syotaro Obi,Norihiko Ohura,Akiko Matsushita,Akira Kamiya,Joji Ando
出处
期刊:American Journal of Physiology-heart and Circulatory Physiology [American Physical Society]
卷期号:288 (4): H1915-H1924 被引量:343
标识
DOI:10.1152/ajpheart.00956.2004
摘要

Pluripotent embryonic stem (ES) cells are capable of differentiating into all cell lineages, but the molecular mechanisms that regulate ES cell differentiation have not been sufficiently explored. In this study, we report that shear stress, a mechanical force generated by fluid flow, can induce ES cell differentiation. When Flk-1-positive (Flk-1 + ) mouse ES cells were subjected to shear stress, their cell density increased markedly, and a larger percentage of the cells were in the S and G 2 -M phases of the cell cycle than Flk-1 + ES cells cultured under static conditions. Shear stress significantly increased the expression of the vascular endothelial cell-specific markers Flk-1, Flt-1, vascular endothelial cadherin, and PECAM-1 at both the protein level and the mRNA level, but it had no effect on expression of the mural cell marker smooth muscle α-actin, blood cell marker CD3, or the epithelial cell marker keratin. These findings indicate that shear stress selectively promotes the differentiation of Flk-1 + ES cells into the endothelial cell lineage. The shear stressed Flk-1 + ES cells formed tubelike structures in collagen gel and developed an extensive tubular network significantly faster than the static controls. Shear stress induced tyrosine phosphorylation of Flk-1 in Flk-1 + ES cells that was blocked by a Flk-1 kinase inhibitor, SU1498, but not by a neutralizing antibody against VEGF. SU1498 also abolished the shear stress-induced proliferation and differentiation of Flk-1 + ES cells, indicating that a ligand-independent activation of Flk-1 plays an important role in the shear stress-mediated proliferation and differentiation by Flk-1 + ES cells.
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