WD repeat domain 82 (Wdr82) facilitates mouse iPSCs generation by interfering mitochondrial oxidative phosphorylation and glycolysis
-
Published:2023-07-20
Issue:8
Volume:80
Page:
-
ISSN:1420-682X
-
Container-title:Cellular and Molecular Life Sciences
-
language:en
-
Short-container-title:Cell. Mol. Life Sci.
Author:
Cui Guina, Zhou Jingxuan, Sun Jiatong, Kou Xiaochen, Su Zhongqu, Xu Yiliang, Liu Tingjun, Sun Lili, Li Wenhui, Wu Xuanning, Wei Qingqing, Gao Shaorong, Shi KerongORCID
Abstract
Abstract
Background
Abundantly expressed factors in the oocyte cytoplasm can remarkably reprogram terminally differentiated germ cells or somatic cells into totipotent state within a short time. However, the mechanism of the different factors underlying the reprogramming process remains uncertain.
Methods
On the basis of Yamanaka factors OSKM induction method, MEF cells were induced and reprogrammed into iPSCs under conditions of the oocyte-derived factor Wdr82 overexpression and/or knockdown, so as to assess the reprogramming efficiency. Meanwhile, the cellular metabolism was monitored and evaluated during the reprogramming process. The plurpotency of the generated iPSCs was confirmed via pluripotent gene expression detection, embryoid body differentiation and chimeric mouse experiment.
Results
Here, we show that the oocyte-derived factor Wdr82 promotes the efficiency of MEF reprogramming into iPSCs to a greater degree than the Yamanaka factors OSKM. The Wdr82-expressing iPSC line showed pluripotency to differentiate and transmit genetic material to chimeric offsprings. In contrast, the knocking down of Wdr82 can significantly reduce the efficiency of somatic cell reprogramming. We further demonstrate that the significant suppression of oxidative phosphorylation in mitochondria underlies the molecular mechanism by which Wdr82 promotes the efficiency of somatic cell reprogramming. Our study suggests a link between mitochondrial energy metabolism remodeling and cell fate transition or stem cell function maintenance, which might shed light on the embryonic development and stem cell biology.
Funder
Key Technology Research and Development Program of Shandong National Natural Science Foundation of China
Publisher
Springer Science and Business Media LLC
Subject
Cell Biology,Cellular and Molecular Neuroscience,Pharmacology,Molecular Biology,Molecular Medicine
Reference42 articles.
1. Austenaa LMI, Barozzi I, Simonatto M, Masella S, Chiara GD, Ghisletti S, Curina A, Wit ED, Bouwman BAM, Pretis SD, Piccolo V, Termanini A, Prosperini E, Pelizzola M, Laat WD, Natoli G (2015) Transcription of mammalian cis-regulatory elements is restrained by actively enforced early termination. Mol Cell 60(3):460–474 2. Bargiela D, Burr SP, Chinnery PF (2018) Mitochondria and hypoxia: metabolic crosstalk in cell-fate decisions. Trends Endocrinol Metab 29(4):249–259 3. Bi Y, Lv Z, Wang Y, Hai T, Huo R, Zhou ZM, Zhou Q, Sha JH (2011) WDR82, a key epigenetics-related factor, plays a crucial role in normal early embryonic development in mice. Biol Reprod 84(4):756–764 4. Chakrabarty RP, Chandel NS (2021) Mitochondria as signaling organelles control mammalian stem cell fate. Cell Stem Cell 28(3):394–408 5. Chen JY, Gao YW, Huang H, Xu K, Chen X, Jiang YH, Li H, Gao S, Tao Y, Wang H, Zhang Y, Wang HL, Cai T, Gao SR (2015) The combination of Tet1 with Oct4 generates high-quality mouse-induced pluripotent stem cells. Stem Cells 33(3):686–698
Cited by
2 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|