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Wnt 信号通路重编程牙髓干细胞的代谢。

Wnt signaling reprograms metabolism in dental pulp stem cells.

机构信息

Department of Cell Biology and Histology, University of the Basque Country (UPV/EHU), Barrio Sarriena, Leioa, Spain.

Division of Radiotherapy and Imaging, Cancer Research UK Cancer Imaging Centre, The Institute of Cancer Research and The Royal Marsden NHS Foundation Trust, London, United Kingdom.

出版信息

J Cell Physiol. 2019 Aug;234(8):13068-13082. doi: 10.1002/jcp.27977. Epub 2018 Dec 13.

Abstract

Human dental pulp stem cells (DPSCs) can differentiate to a wide range of different cell lineages, and share some gene expression and functional similarities with pluripotent stem cells. The stemness of DPSCs can also be pharmacologically enhanced by the activation of canonical Wnt signaling. Here, we examined the metabolic profile of DPSCs during reprogramming linked to Wnt activation, by a short (48 hr) exposure to either the GSK3-β inhibitor BIO (6-bromoindirubin-3´-oxine) or human recombinant protein WNT-3A. Both treatments largely increased glucose consumption, and induced a gene overexpression of pyruvate and mitochondrial acetyl-coA producing enzymes, thus activating mitochondrial tricarboxylic acid cycle (TCA) metabolism in DPSCs. This ultimately led to an accumulation of reducing power and a mitochondrial hyperpolarization in DPSCs. Interestingly, Nile Red staining showed that lipid fuel reserves were being stored in Wnt-activated DPSCs. We associate this metabolic reprogramming with an energy-priming state allowing DPSCs to better respond to subsequent high demands of energy and biosynthesis metabolites for cellular growth. These results show that enhancement of the stemness of DPSCs by Wnt activation comes along with a profound metabolic remodeling, which is distinctly characterized by a crucial participation of mitochondrial metabolism.

摘要

人牙髓间充质干细胞(DPSCs)可向多种不同的细胞谱系分化,并与多能干细胞在基因表达和功能上具有某些相似性。通过激活经典 Wnt 信号通路,也可以在药理学上增强 DPSCs 的干性。在这里,我们通过短暂(48 小时)暴露于 GSK3-β 抑制剂 BIO(6-溴靛红-3'-肟)或人重组蛋白 WNT-3A,研究了与 Wnt 激活相关的 DPSCs 重编程过程中的代谢特征。这两种处理方法均极大地增加了葡萄糖的消耗,并诱导了丙酮酸和线粒体乙酰辅酶 A 生成酶的基因过表达,从而激活了 DPSCs 中的线粒体三羧酸循环(TCA)代谢。这最终导致 DPSCs 中还原力的积累和线粒体超极化。有趣的是,尼罗红染色显示,在激活 Wnt 的 DPSCs 中正在储存脂质燃料储备。我们将这种代谢重编程与能量预充状态联系起来,使 DPSCs 能够更好地响应随后对能量和生物合成代谢物的高需求,以促进细胞生长。这些结果表明,Wnt 激活增强 DPSCs 的干性伴随着深刻的代谢重塑,其中线粒体代谢起着至关重要的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ffc6/6519273/fcb804757b49/JCP-234-13068-g001.jpg

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