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首页> 外文期刊>Cell death & disease. >Pdcd4 restrains the self-renewal and white-to-beige transdifferentiation of adipose-derived stem cells
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Pdcd4 restrains the self-renewal and white-to-beige transdifferentiation of adipose-derived stem cells

机译:Pdcd4抑制脂肪干细胞的自我更新和白至米色转分化

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The stemness maintenance of adipose-derived stem cells (ADSCs) is important for adipose homeostasis and energy balance. Programmed cell death 4 (Pdcd4) has been demonstrated to be involved in the development of obesity, but its possible roles in ADSC function and adipogenic capacity remain unclear. In this study, we demonstrate that Pdcd4 is a key controller that limits the self-renewal and white-to-beige transdifferentiation of ADSCs. Pdcd4 deficiency in mice caused stemness enhancement of ADSCs as evidenced by increased expression of CD105, CD90, Nanog and Oct4 on ADSCs, together with enhanced in situ proliferation in adipose tissues. Pdcd4 deficiency promoted proliferation, colony formation of ADSCs and drove more ADSCs entering the S phase accompanied by AKT activation and cyclinD1 upregulation. Blockade of AKT signaling in Pdcd4-deficient ADSCs led to a marked decline in cyclinD1, S-phase entry and cell proliferation, revealing AKT as a target for repressing ADSC self-renewal by Pdcd4. Intriguingly, depletion of Pdcd4 promoted the transdifferentiation of ADSCs into beige adipocytes. A reduction in lipid contents and expression levels of white adipocyte markers including C/EBP α , PPAR- γ , adiponectin and α P2 was detected in Pdcd4-deficient ADSCs during white adipogenic differentiation, substituted by typical beige adipocyte characteristics including small, multilocular lipid droplets and UCP1 expression. More lactate produced by Pdcd4-deficient ADSCs might be an important contributor to the expression of UCP1 and white-to-beige transdifferentiation. In addition, an elevation of UCP1 expression was confirmed in white adipose tissues from Pdcd4-deficient mice upon high-fat diet, which displayed increased energy expenditure and resistance to obesity as compared with wild-type obese mice. These findings provide evidences that Pdcd4 produces unfavorable influences on ADSC stemness, which contribute to adipose dysfunction, obesity and metabolic syndromes, thereby proposing Pdcd4 as a potential intervening target for regulating ADSC function.
机译:脂肪干细胞(ADSCs)的干性维持对脂肪稳态和能量平衡很重要。程序性细胞死亡4(Pdcd4)已被证明与肥胖的发展有关,但尚不清楚其在ADSC功能和成脂能力中的可能作用。在这项研究中,我们证明了Pdcd4是限制ADSCs自我更新和白米色转分化的关键控制器。小鼠中Pdcd4缺乏引起ADSC的茎干增强,这可以通过ADSC上CD105,CD90,Nanog和Oct4的表达增加以及在脂肪组织中原位增殖的增强来证明。 Pdcd4缺乏症会促进增殖,ADSC的集落形成,并使更多的ADSC进入S期,并伴有AKT激活和cyclinD1上调。在缺乏Pdcd4的ADSC中阻断AKT信号导致cyclinD1,S期进入和细胞增殖显着下降,这表明AKT是抑制Pdcd4进行ADSC自我更新的靶标。有趣的是,Pdcd4的消耗促进了ADSCs向米色脂肪细胞的转分化。在白色成脂分化过程中,在缺乏Pdcd4的ADSC中检测到Pdcd4缺失的ADSC中脂质含量和白色脂肪细胞标志物(包括C / EBPα,PPAR-γ,脂联素和αP2)的表达水平降低,被典型的米色脂肪细胞特征(包括小,多眼脂质滴)取代和UCP1表达式。缺乏Pdcd4的ADSC产生的更多乳酸可能是UCP1表达和白米色转分化的重要因素。另外,在高脂饮食下,Pdcd4缺陷小鼠的白色脂肪组织中证实了UCP1表达的升高,与野生型肥胖小鼠相比,这显示出增加的能量消耗和对肥胖的抵抗力。这些发现提供了证据,表明Pdcd4对ADSC茎产生不利的影响,从而导致脂肪功能障碍,肥胖和代谢综合征,从而提出Pdcd4作为调节ADSC功能的潜在干预靶标。

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