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Prion potency in stem cells biology

机译:on病毒在干细胞生物学中的作用

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摘要

Prion protein (PrP) can be considered a pivotal molecule because it interacts with several partners to perform a diverse range of critical biological functions that might differ in embryonic and adult cells. In recent years, there have been major advances in elucidating the putative role of PrP in the basic biology of stem cells in many different systems. Here, we review the evidence indicating that PrP is a key molecule involved in driving different aspects of the potency of embryonic and tissue-specific stem cells in self-perpetuation and differentiation in many cell types. It has been shown that PrP is involved in stem cell self-renewal, controlling pluripotency gene expression, proliferation and neural and cardiomyocyte differentiation. PrP also has essential roles in distinct processes that regulate tissue-specific stem cell biology in nervous and hematopoietic systems and during muscle regeneration. Results from our own investigations have shown that PrP is able to modulate self-renewal and proliferation in neural stem cells, processes that are enhanced by PrP interactions with stress inducible protein 1 (STI1). Thus, the available data reveal the influence of PrP in acting upon the maintenance of pluripotent status or the differentiation of stem cells from the early embryogenesis through adulthood.
机译:on病毒蛋白(PrP)可以被认为是关键分子,因为它与几个伙伴相互作用以执行多种关键的生物学功能,这些功能在胚胎和成年细胞中可能会有所不同。近年来,在阐明PrP在许多不同系统中干细胞的基本生物学中的假定作用方面取得了重大进展。在这里,我们审查的证据表明,PrP是关键因子,参与驱动胚胎和组织特异性干细胞在许多细胞类型的自我永存和分化中发挥不同作用。已经显示PrP参与干细胞自我更新,控制多能性基因表达,增殖以及神经和心肌细胞分化。 PrP在调节神经和造血系统以及肌肉再生过程中的组织特异性干细胞生物学的不同过程中也具有重要作用。我们自己的研究结果表明,PrP能够调节神经干细胞的自我更新和增殖,而PrP与应激诱导蛋白1(STI1)的相互作用增强了这一过程。因此,现有数据揭示了PrP在维持多能状态或干细胞从早期胚胎形成到成年的分化中的作用。

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