Christensen David R, Calder Philip C, Houghton Franchesca D
Centre for Human Development, Stem Cells &Regeneration, Faculty of Medicine, University of Southampton, Southampton, SO16 6YD, UK.
Human Development and Health Academic Unit, Faculty of Medicine, University of Southampton, Southampton, SO16 6YD, UK.
Sci Rep. 2015 Dec 7;5:17500. doi: 10.1038/srep17500.
Human embryonic stem cells (hESCs) have the capacity to differentiate into all cell types and thus have great potential for regenerative medicine. hESCs cultured at low oxygen tensions are more pluripotent and display an increased glycolytic rate but how this is regulated is unknown. This study therefore aimed to investigate the regulation of glucose metabolism in hESCs and whether this might impact OCT4 expression. In contrast to the glucose transporter GLUT1, GLUT3 was regulated by environmental oxygen and localised to hESC membranes. Silencing GLUT3 caused a reduction in glucose uptake and lactate production as well as OCT4 expression. GLUT3 and OCT4 expression were correlated suggesting that hESC self-renewal is regulated by the rate of glucose uptake. Surprisingly, PKM2, a rate limiting enzyme of glycolysis displayed a nuclear localisation in hESCs and silencing PKM2 did not alter glucose metabolism suggesting a role other than as a glycolytic enzyme. PKM2 expression was increased in hESCs cultured at 5% oxygen compared to 20% oxygen and silencing PKM2 reduced OCT4 expression highlighting a transcriptional role for PKM2 in hESCs. Together, these data demonstrate two separate mechanisms by which genes regulating glucose uptake and metabolism are involved in the hypoxic support of pluripotency in hESCs.
人类胚胎干细胞(hESCs)具有分化为所有细胞类型的能力,因此在再生医学中具有巨大潜力。在低氧张力下培养的hESCs具有更高的多能性,且糖酵解速率增加,但这种调节机制尚不清楚。因此,本研究旨在探究hESCs中葡萄糖代谢的调节机制,以及这是否会影响OCT4的表达。与葡萄糖转运蛋白GLUT1不同,GLUT3受环境氧调节,并定位于hESC细胞膜。沉默GLUT3会导致葡萄糖摄取、乳酸生成以及OCT4表达减少。GLUT3和OCT4的表达相关,表明hESC的自我更新受葡萄糖摄取速率调节。令人惊讶的是,糖酵解的限速酶PKM2在hESCs中定位于细胞核,沉默PKM2不会改变葡萄糖代谢,这表明其作用并非仅仅作为一种糖酵解酶。与在20%氧气条件下培养的hESCs相比,在5%氧气条件下培养的hESCs中PKM2表达增加,沉默PKM2会降低OCT4表达,这突出了PKM2在hESCs中的转录作用。总之,这些数据证明了调节葡萄糖摄取和代谢的基因参与hESCs多能性低氧支持的两种不同机制。