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Role of hypoxia-mediated cellular prion protein functional change in stem cells and potential application in angiogenesis

机译:低氧介导的细胞病毒蛋白功能变化在干细胞中的作用及其在血管生成中的潜在应用

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摘要

Cellular prion protein (PrPC) can replace other pivotal molecules due to its interaction with several partners in performing a variety of important biological functions that may differ between embryonic and mature stem cells. Recent studies have revealed major advances in elucidating the putative role of PrPC in the regulation of stem cells and its application in stem cell therapy. What is special about PrPC is that its expression may be regulated by hypoxia-inducible factor (HIF)-1α, which is the transcriptional factor of cellular response to hypoxia. Hypoxic conditions have been known to drive cellular responses that can enhance cell survival, differentiation and angiogenesis through adaptive processes. Our group recently reported hypoxia-enhanced vascular repair of endothelial colony-forming cells on ischemic injury. Hypoxia-induced AKT/signal transducer and activator of transcription 3 phosphorylation eventually increases neovasculogenesis. In stem cell biology, hypoxia promotes the expression of growth factors. According to other studies, aspects of tissue regeneration and cell function are influenced by hypoxia, which serves an essential role in stem cell HIF-1α signaling. All these data suggest the possibility that hypoxia-mediated PrPC serves an important role in angiogenesis. Therefore, the present review summarizes the characteristics of PrPC, which is produced by HIF-1α in hypoxia, as it relates to angiogenesis.
机译:细胞pr病毒蛋白(PrP C )可以替代其他关键分子,因为它与几种伙伴相互作用,可以执行各种重要的生物学功能,而胚胎干细胞和成熟干细胞可能会有所不同。最近的研究揭示了在阐明PrP C 在干细胞调节中的假定作用及其在干细胞治疗中的应用方面的重大进展。 PrP C 的特殊之处在于其表达可能受缺氧诱导因子(HIF)-1α的调节,该因子是细胞对缺氧反应的转录因子。已知低氧条件可驱动细胞反应,从而通过适应性过程增强细胞存活,分化和血管生成。我们的小组最近报道了缺氧增强了内皮细胞集落形成细胞对缺血性损伤的修复作用。缺氧诱导的AKT /信号转导子和转录激活子3磷酸化最终增加了新生血管生成。在干细胞生物学中,缺氧促进生长因子的表达。根据其他研究,缺氧会影响组织再生和细胞功能,缺氧在干细胞HIF-1α信号传导中起着至关重要的作用。所有这些数据表明低氧介导的PrP C 在血管生成中起重要作用的可能性。因此,本综述总结了由HIF-1α在缺氧状态下产生的PrP C 的特征,因为它与血管生成有关。

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