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Hypoxia stimulates the proliferation of rat neural stem cells by regulating the expression of metabotropic glutamate receptors: an in vitro study

机译:缺氧通过调节代谢型谷氨酸受体的表达刺激大鼠神经干细胞的增殖:一项体外研究

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Neural stem cells (NSCs) reside in not only developing, but also adult brain with specialized microenvironments that regulate their function. In vitro and in vivo studies have revealed strong regulatory links between hypoxic/ischemic insults and activation of NSCs. However, the underlying mechanisms remain unclear. Here, we show that proliferating NSCs isolated from rat E15.5 cortex expressed functional metabotropic glutamate receptor (mGluR) subtype 3-7. Hypoxic exposure regulated their expression in NSCs in mRNA and protein levels. Activation of mGluRs by glutamate or Trans-ACPD (a non subtype-selective mGluRs agonist) sensitized NSCs to the growth effects of hypoxia. Pharmacological blockade of ionotropic glutamate receptor (iGluR) using MK-801 did not attenuate the action of glutamate in NSCs. Furthemore, we used the group specific mGluR agonists DHPG, LY 379268 and L-AP4 to explore which mGluR subtypes are responsible for stimulating NSCs proliferation after hypoxia. The results suggested that hypoxia increased expression of group I mGluR5 and significantly enhanced the NSCs proliferation. We conclude that hypoxia regulates the expression of mGluRs in proliferating NSCs and the dynamic expression of mGluRs induced by hypoxia may be one of the mechanisms of hypoxia stimulated NSCs activation. Regulation of mGluRs in NSCs might be a useful tool in the experimental cell therapy of hypoxic/ischemic injuries of CNS.
机译:神经干细胞(NSC)不仅存在于发育中,而且还存在于具有调节其功能的专门微环境的成年大脑中。体外和体内研究表明,缺氧/缺血性损伤与NSC活化之间存在很强的调节联系。但是,其潜在机制仍不清楚。在这里,我们显示从大鼠E15.5皮质分离的增殖性NSC表达功能性代谢型谷氨酸受体(mGluR)3-7型。缺氧暴露调节其在NSC中的mRNA和蛋白质水平表达。谷氨酸或反式ACPD(一种非亚型选择性mGluRs激动剂)对mGluRs的激活使NSC对缺氧的生长作用敏感。使用MK-801的离子型谷氨酸受体(iGluR)的药理学阻断作用不会减弱NSC中谷氨酸的作用。此外,我们使用组特异性mGluR激动剂DHPG,LY 379268和L-AP4来研究哪些mGluR亚型负责刺激缺氧后NSC的增殖。结果表明,低氧增加了I组mGluR5的表达,并显着增强了NSC的增殖。我们得出结论,缺氧调节增殖的NSCs中mGluRs的表达,由缺氧诱导的mGluRs的动态表达可能是缺氧刺激NSCs活化的机制之一。 NSC中mGluR的调节可能是中枢神经系统缺氧/缺血性损伤的实验细胞治疗中的有用工具。

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