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Hypoxia-Activated PI3K/Akt Inhibits Oxidative Stress via the Regulation of Reactive Oxygen Species in Human Dental Pulp Cells

机译:缺氧激活的PI3K / AKT通过调节人牙髓细胞中的活性氧物质的调节来抑制氧化应激

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In order to use stem cells as a resource for tissue regeneration, it is necessary to induce expansion in vitro. However, during culture, stem cells often lose functional properties and become senescent. Increasing evidence indicates that hypoxic preconditioning with physiological oxygen concentration can maintain the functional properties of stem cells in vitro. The purpose of the current study was to test the hypothesis that hypoxic preconditioning with physiological oxygen concentration can maintain the functional properties of stem cells in culture by reducing oxidative stress. In vitro studies were performed in primary human dental pulp cells (hDPCs). Reduced levels of oxidative stress and increased cellular “stemness” in response to physiological hypoxia were dependent upon the expression of reactive oxygen species (ROS). Subsequently, RNA-sequencing analysis revealed the increased expression of phosphoinositide 3-kinase (PI3K)/Akt signaling in culture, a pathway which regulates oxidative stress. Furthermore, we found evidence that PI3K/Akt signaling might affect intracellular ROS production by negatively regulating expression of the downstream protein Forkhead Box Protein O1 (FOXO1) and Caspase 3. Collectively, our data show that the PI3K/Akt pathway is activated in response to hypoxia and inhibits oxidative stress in a ROS-dependent manner. This study identified redox-mediated hypoxic preconditioning regulatory mechanisms that may be significant for tissue regeneration.
机译:为了使用干细胞作为组织再生的资源,有必要在体外诱导膨胀。然而,在培养过程中,干细胞通常失去功能性,并变为衰老。越来越多的证据表明,具有生理氧浓度的缺氧预处理可以在体外维持干细胞的功能性质。目前研究的目的是测试具有生理氧浓度的缺氧预处理,可以通过降低氧化应激来维持培养物中干细胞的功能性质。体外研究在原发性人牙髓细胞(HDPC)中进行。依赖于生理缺氧的氧化应激水平和增加的细胞“茎”依赖于反应性氧(ROS)的表达。随后,RNA测序分析揭示了培养物中磷酸膦酸3-激酶(PI3K)/ Akt信号传导的增加,该途径调节氧化应激。此外,我们发现PI3K / AKT信号传导可能会通过对下游蛋白叉箱蛋白O1(FOXO1)和Caspase的表达产生额集,我们的数据表明PI3K / AKT途径被激活,以响应于其激活PI3K / AKT途径来影响细胞内ROS产生。缺氧并以依赖于ROS依赖性方式抑制氧化应激。该研究确定了氧化还原介导的缺氧预处理调节机制,可能对组织再生显着。

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