首页> 外文期刊>Stem Cell Reports >IGF-1R Promotes Symmetric Self-Renewal and Migration of Alkaline Phosphatase + Germ Stem Cells through HIF-2α-OCT4/CXCR4 Loop under?Hypoxia
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IGF-1R Promotes Symmetric Self-Renewal and Migration of Alkaline Phosphatase + Germ Stem Cells through HIF-2α-OCT4/CXCR4 Loop under?Hypoxia

机译:IGF-1R在缺氧条件下通过HIF-2α-OCT4/ CXCR4环促进碱性磷酸酶+生殖干细胞的对称自我更新和迁移。

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Summary Hypoxia cooperates with endocrine signaling to maintain the symmetric self-renewal proliferation and migration of embryonic germline stem cells (GSCs). However, the lack of an appropriate in?vitro cell model has dramatically hindered the understanding of the mechanism underlying this cooperation. Here, using a serum-free system, we demonstrated that hypoxia significantly induced the GSC mesenchymal transition, increased the expression levels of the pluripotent transcription factor OCT4 and migration-associated proteins (SDF-1, CXCR4, IGF-1, and IGF-1R), and activated the cellular expression and translocalization of the CXCR4-downstream proteins ARP3/pFAK. The underlying mechanism involved significant IGF-1/IGF-1R activation of OCT4/CXCR4 expression through HIF-2α regulation. Picropodophyllin-induced inhibition of IGF-1R phosphorylation significantly suppressed hypoxia-induced SDF-1/CXCR4 expression and cell migration. Furthermore, transactivation between IGF-1R and CXCR4 was involved. In summary, we demonstrated that niche hypoxia synergistically cooperates with its associated IGF-1R signaling to regulate the symmetric division (self-renewal proliferation) and cell migration of alkaline phosphatase-positive GSCs through HIF-2α-OCT4/CXCR4 during embryogenesis.
机译:总结缺氧与内分泌信号传导共同维持胚胎种系干细胞(GSC)的对称自我更新增殖和迁移。然而,缺乏合适的体外细胞模型极大地阻碍了对这种合作机制的理解。在这里,使用无血清系统,我们证明了缺氧显着诱导了GSC间质转化,增加了多能转录因子OCT4和迁移相关蛋白(SDF-1,CXCR4,IGF-1和IGF-1R)的表达水平),并激活CXCR4下游蛋白ARP3 / pFAK的细胞表达和转位。潜在的机制涉及通过HIF-2α调控IOC-1 / IGF-1R对OCT4 / CXCR4表达的显着激活。鬼臼苦素诱导的IGF-1R磷酸化抑制显着抑制了缺氧诱导的SDF-1 / CXCR4表达和细胞迁移。此外,涉及IGF-1R和CXCR4之间的反式激活。总之,我们证明了利基低氧与其相关的IGF-1R信号协同协同调节胚胎发生过程中碱性磷酸酶阳性GSC通过HIF-2α-OCT4/ CXCR4的对称分裂(自我更新增殖)和细胞迁移。

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