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Low oxygen tension modulates the osteogenic differentiation of mouse embryonic stem cells

机译:低氧张力调节小鼠胚胎干细胞的成骨分化

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This study examined the effects of low oxygen tension on the osteogenic differentiation of embryonic stem cells (ESCs) in a three-dimensional culture system. The high expression levels of hypoxia-related proteins hypoxia-inducible factor-1 alpha and vascular endothelial growth factor were first validated in ESCs subjected to hypoxic conditions compared with normoxic controls. The osteogenic differentiation of hypoxic ESCs with either osteogenic or osteogenic factor-free media was subsequently evaluated by measuring alkaline phosphatase activity, intracellular calcium levels, matrix mineralization, and the protein levels of osteogenic markers Runt-related transcription factor 2 and osterix. We confirmed that hypoxia significantly stimulated ESC osteogenic activity; the strongest stimulation of ESC osteogenesis was exerted when cells were grown in osteogenic media. To identify differentially expressed genes associated with hypoxia-induced ESC differentiation, we performed microarray analysis of ESCs cultured in osteogenic media under normoxic and hypoxic conditions. This study demonstrated that differences in oxygen tension induced the differential expression of genes known to play roles in such processes as skeletal system development and signaling pathways for bone morphogenetic protein, Wnt, Notch, mitogen-activated protein kinase, and integrin. These findings reveal the effects of low oxygen tension on osteogenic progression in ESCs and provide insight into the molecular pathways that regulate ESC differentiation following exposure to hypoxia.
机译:本研究在三维培养系统中研究了低氧对胚胎干细胞(ESCs)成骨分化的影响。缺氧相关蛋白缺氧诱导因子-1α和血管内皮生长因子的高表达水平首次在缺氧条件下与常氧对照组相比的ESC中得到验证。随后,通过测量碱性磷酸酶活性、细胞内钙水平、基质矿化以及成骨标记物Runt相关转录因子2和osterix的蛋白水平,评估缺氧ESCs在成骨或无成骨因子培养基中的成骨分化。我们证实低氧显著刺激ESC成骨活性;当细胞在成骨培养基中生长时,ESC成骨作用最强。为了确定与低氧诱导ESC分化相关的差异表达基因,我们对在常氧和低氧条件下在成骨培养基中培养的ESC进行了微阵列分析。这项研究表明,氧张力的差异诱导了已知在骨骼系统发育和骨形态发生蛋白、Wnt、Notch、丝裂原活化蛋白激酶和整合素信号通路等过程中发挥作用的基因的差异表达。这些发现揭示了低氧张力对ESCs成骨进展的影响,并提供了低氧暴露后调节ESC分化的分子途径的见解。

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