Mitofusins deficiency elicits mitochondrial metabolic reprogramming to pluripotency

被引:0
|
作者
M J Son
Y Kwon
M-Y Son
B Seol
H-S Choi
S-W Ryu
C Choi
Y S Cho
机构
[1] Stem Cell Research Center,Department of Functional genomics
[2] Korea Research Institute of Bioscience and Biotechnology (KRIBB),Department of Bio and Brain Engineering
[3] 125 Gwahak-ro,undefined
[4] Korea University of Science & Technology (UST),undefined
[5] 217 Gajungro,undefined
[6] KAIST,undefined
[7] 291 Daehak-ro,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Cell reprogramming technology has allowed the in vitro control of cell fate transition, thus allowing for the generation of highly desired cell types to recapitulate in vivo developmental processes and architectures. However, the precise molecular mechanisms underlying the reprogramming process remain to be defined. Here, we show that depleting p53 and p21, which are barriers to reprogramming, yields a high reprogramming efficiency. Deletion of these factors results in a distinct mitochondrial background with low expression of oxidative phosphorylation subunits and mitochondrial fusion proteins, including mitofusin 1 and 2 (Mfn1/2). Importantly, Mfn1/2 depletion reciprocally inhibits the p53-p21 pathway and promotes both the conversion of somatic cells to a pluripotent state and the maintenance of pluripotency. Mfn1/2 depletion facilitates the glycolytic metabolic transition through the activation of the Ras-Raf and hypoxia-inducible factor 1α (HIF1α) signaling at an early stage of reprogramming. HIF1α is required for increased glycolysis and reprogramming by Mfn1/2 depletion. Taken together, these results demonstrate that Mfn1/2 constitutes a new barrier to reprogramming, and that Mfn1/2 ablation facilitates the induction of pluripotency through the restructuring of mitochondrial dynamics and bioenergetics.
引用
收藏
页码:1957 / 1969
页数:12
相关论文
共 50 条
  • [31] Totipotency, Pluripotency and Nuclear Reprogramming
    Mitalipov, Shoukhrat
    Wolf, Don
    ENGINEERING OF STEM CELLS, 2009, 114 : 185 - 199
  • [32] A chemical logic for reprogramming to pluripotency
    Alejandro De Los Angeles
    George Q Daley
    Cell Research, 2013, 23 : 1337 - 1338
  • [33] Induced Pluripotency and Epigenetic Reprogramming
    Hochedlinger, Konrad
    Jaenisch, Rudolf
    COLD SPRING HARBOR PERSPECTIVES IN BIOLOGY, 2015, 7 (12):
  • [34] Epigenetics of Reprogramming to Induced Pluripotency
    Papp, Bernadett
    Plath, Kathrin
    CELL, 2013, 152 (06) : 1324 - 1343
  • [35] REPROGRAMMING OF SOMATIC CELLS TO PLURIPOTENCY
    Nakagawa, Masato
    Yamanaka, Shinya
    CELL BIOLOGY OF STEM CELLS, 2010, 695 : 215 - 224
  • [36] Epigenetic reprogramming and induced pluripotency
    Hochedlinger, Konrad
    Plath, Kathrin
    DEVELOPMENT, 2009, 136 (04): : 509 - 523
  • [37] Open chromatin in pluripotency and reprogramming
    Gaspar-Maia, Alexandre
    Alajem, Adi
    Meshorer, Eran
    Ramalho-Santos, Miguel
    NATURE REVIEWS MOLECULAR CELL BIOLOGY, 2011, 12 (01) : 36 - 47
  • [38] The functions of microRNAs in pluripotency and reprogramming
    Trevor R. Leonardo
    Heather L. Schultheisz
    Jeanne F. Loring
    Louise C. Laurent
    Nature Cell Biology, 2012, 14 : 1114 - 1121
  • [39] Understanding cellular reprogramming and pluripotency
    Hochedlinger, Konrad
    HUMAN GENE THERAPY, 2013, 24 (05) : A9 - A9
  • [40] Molecular mechanisms of pluripotency and reprogramming
    Na, Jie
    Plews, Jordan
    Li, Jianliang
    Wongtrakoongate, Patompon
    Tuuri, Timo
    Feki, Anis
    Andrews, Peter W.
    Unger, Christian
    STEM CELL RESEARCH & THERAPY, 2010, 1