Department of Experimental and Clinical Medicine, Stem Cell Laboratory, Research Center of Advanced Biochemistry and Molecular Biology, University "Magna Graecia" of Catanzaro, Viale Europa, 88100, Catanzaro, Italy.
CIS (Centro Interdisciplinare Servizi), University "Magna Graecia" of Catanzaro, Viale Europa, 88100, Catanzaro, Italy.
Cell Death Dis. 2018 Jan 5;9(1):6. doi: 10.1038/s41419-017-0028-1.
Human pluripotent stem cells (hPSCs), including human embryonic stem cells (hESCs) derived from blastocyst and human induced pluripotent stem cells (hiPSCs) generated from somatic cells by ectopic expression of defined transcriptional factors, have both the ability to self-renew and to differentiate into all cell types. Here we explored the two antagonistic effects of retinoic acid (RA) on hiPSCs. Although RA has been widely described as a pharmacological agent with a critical role in initiating differentiation of pluripotent stem cells, we demonstrate that short-term RA exposure not only antagonizes cell differentiation and sustains pluripotency of hiPSCs, but it also boosts and improves their properties and characteristics. To shed light on the mechanistic insights involved in the resistance to differentiation of hiPSCs cultured in RA conditions, as well as their improved pluripotency state, we focused our attention on the Wnt pathway. Our findings show that RA inhibits the Wnt canonical pathway and positively modulates the Akt/mTOR signaling, explaining why such perturbations, under our experimental conditions, do not lead to hiPSCs differentiation. Altogether, these data uncover a novel role for RA in favouring the maintenance of ground-state pluripotency, supporting its bivalent role, dose- and time-dependent, for hiPSCs differentiation and self-renewal processes.
人类多能干细胞(hPSCs),包括源自囊胚的人类胚胎干细胞(hESCs)和通过外源表达定义转录因子生成的人类诱导多能干细胞(hiPSCs),均具有自我更新和分化为所有细胞类型的能力。在这里,我们探讨了视黄酸(RA)对 hiPSCs 的两种拮抗作用。尽管 RA 已被广泛描述为一种在启动多能干细胞分化中具有关键作用的药理学药物,但我们证明,短期 RA 暴露不仅拮抗细胞分化并维持 hiPSCs 的多能性,而且还增强和改善其特性和特征。为了阐明在 RA 条件下培养的 hiPSCs 对分化的抵抗以及其增强的多能性状态的机制见解,我们将注意力集中在 Wnt 通路。我们的研究结果表明,RA 抑制 Wnt 经典途径并正向调节 Akt/mTOR 信号通路,这解释了为什么在我们的实验条件下,这些扰动不会导致 hiPSCs 分化。总之,这些数据揭示了 RA 在促进基础态多能性维持方面的新作用,支持其在 hiPSCs 分化和自我更新过程中具有双重作用,剂量和时间依赖性。