Literature DB >> 25882047

Mitofusins deficiency elicits mitochondrial metabolic reprogramming to pluripotency.

M J Son1,2, Y Kwon1,2, M-Y Son1, B Seol1, H-S Choi1, S-W Ryu3, C Choi3, Y S Cho1,2.   

Abstract

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.

Entities:  

Mesh:

Substances:

Year:  2015        PMID: 25882047      PMCID: PMC4816104          DOI: 10.1038/cdd.2015.43

Source DB:  PubMed          Journal:  Cell Death Differ        ISSN: 1350-9047            Impact factor:   15.828


  30 in total

Review 1.  Mitochondrial fusion and fission in cell life and death.

Authors:  Benedikt Westermann
Journal:  Nat Rev Mol Cell Biol       Date:  2010-12       Impact factor: 94.444

2.  The senescence-related mitochondrial/oxidative stress pathway is repressed in human induced pluripotent stem cells.

Authors:  Alessandro Prigione; Beatrix Fauler; Rudi Lurz; Hans Lehrach; James Adjaye
Journal:  Stem Cells       Date:  2010-04       Impact factor: 6.277

3.  p53 counteracts reprogramming by inhibiting mesenchymal-to-epithelial transition.

Authors:  R Brosh; Y Assia-Alroy; A Molchadsky; C Bornstein; E Dekel; S Madar; Y Shetzer; N Rivlin; N Goldfinger; R Sarig; V Rotter
Journal:  Cell Death Differ       Date:  2012-09-21       Impact factor: 15.828

4.  Somatic oxidative bioenergetics transitions into pluripotency-dependent glycolysis to facilitate nuclear reprogramming.

Authors:  Clifford D L Folmes; Timothy J Nelson; Almudena Martinez-Fernandez; D Kent Arrell; Jelena Zlatkovic Lindor; Petras P Dzeja; Yasuhiro Ikeda; Carmen Perez-Terzic; Andre Terzic
Journal:  Cell Metab       Date:  2011-08-03       Impact factor: 27.287

5.  Suppression of induced pluripotent stem cell generation by the p53-p21 pathway.

Authors:  Hyenjong Hong; Kazutoshi Takahashi; Tomoko Ichisaka; Takashi Aoi; Osami Kanagawa; Masato Nakagawa; Keisuke Okita; Shinya Yamanaka
Journal:  Nature       Date:  2009-08-09       Impact factor: 49.962

6.  Immortalization eliminates a roadblock during cellular reprogramming into iPS cells.

Authors:  Jochen Utikal; Jose M Polo; Matthias Stadtfeld; Nimet Maherali; Warakorn Kulalert; Ryan M Walsh; Adam Khalil; James G Rheinwald; Konrad Hochedlinger
Journal:  Nature       Date:  2009-08-09       Impact factor: 49.962

Review 7.  Mitochondria in innate immune responses.

Authors:  A Phillip West; Gerald S Shadel; Sankar Ghosh
Journal:  Nat Rev Immunol       Date:  2011-05-20       Impact factor: 53.106

8.  Mitofusin-2 is a novel direct target of p53.

Authors:  Weilin Wang; Xiaofei Cheng; Jianju Lu; Jianfeng Wei; Guanghou Fu; Feng Zhu; Changku Jia; Lin Zhou; Haiyang Xie; Shusen Zheng
Journal:  Biochem Biophys Res Commun       Date:  2010-09-06       Impact factor: 3.575

9.  Single-cell expression analyses during cellular reprogramming reveal an early stochastic and a late hierarchic phase.

Authors:  Yosef Buganim; Dina A Faddah; Albert W Cheng; Elena Itskovich; Styliani Markoulaki; Kibibi Ganz; Sandy L Klemm; Alexander van Oudenaarden; Rudolf Jaenisch
Journal:  Cell       Date:  2012-09-14       Impact factor: 41.582

10.  Mitochondrial fusion by pharmacological manipulation impedes somatic cell reprogramming to pluripotency: new insight into the role of mitophagy in cell stemness.

Authors:  Alejandro Vazquez-Martin; Sílvia Cufi; Bruna Corominas-Faja; Christina Oliveras-Ferraros; Luciano Vellon; Javier A Menendez
Journal:  Aging (Albany NY)       Date:  2012-06       Impact factor: 5.682

View more
  49 in total

Review 1.  Mitochondrial dynamics as regulators of cancer biology.

Authors:  Andrew Paul Trotta; Jerry Edward Chipuk
Journal:  Cell Mol Life Sci       Date:  2017-01-12       Impact factor: 9.261

Review 2.  Mitostemness.

Authors:  Elisabet Cuyàs; Sara Verdura; Núria Folguera-Blasco; Cristian Bastidas-Velez; Ángel G Martin; Tomás Alarcón; Javier A Menendez
Journal:  Cell Cycle       Date:  2018-07-02       Impact factor: 4.534

Review 3.  Metabolic remodeling during the loss and acquisition of pluripotency.

Authors:  Julie Mathieu; Hannele Ruohola-Baker
Journal:  Development       Date:  2017-02-15       Impact factor: 6.868

4.  Fission for reprogramming.

Authors:  Juan Pablo Muñoz; Antonio Zorzano
Journal:  Cell Cycle       Date:  2016-12-08       Impact factor: 4.534

Review 5.  Metabolic regulation of stem cell function in tissue homeostasis and organismal ageing.

Authors:  Navdeep S Chandel; Heinrich Jasper; Theodore T Ho; Emmanuelle Passegué
Journal:  Nat Cell Biol       Date:  2016-07-18       Impact factor: 28.824

Review 6.  Metabolism in pluripotency: Both driver and passenger?

Authors:  Perrine Dahan; Vivian Lu; Robert M T Nguyen; Stephanie A L Kennedy; Michael A Teitell
Journal:  J Biol Chem       Date:  2018-02-20       Impact factor: 5.157

Review 7.  The role of mitochondrial fusion and fission in the process of cardiac oxidative stress.

Authors:  Fei Yu; Eltyeb Abdelwahid; Tao Xu; Longgang Hu; Man Wang; Yuzhen Li; Bassam Felipe Mogharbel; Katherine Athayde Teixeira de Carvalho; Luiz Cesar Guarita-Souza; Yi An; Peifeng Li
Journal:  Histol Histopathol       Date:  2019-12-10       Impact factor: 2.303

8.  Omics Integration for Mitochondria Systems Biology.

Authors:  Xin Hu; Young-Mi Go; Dean P Jones
Journal:  Antioxid Redox Signal       Date:  2020-02-03       Impact factor: 8.401

9.  Fatty acid synthesis is critical for stem cell pluripotency via promoting mitochondrial fission.

Authors:  Lihua Wang; Tong Zhang; Lin Wang; Yongping Cai; Xiuying Zhong; Xiaoping He; Lan Hu; Shengya Tian; Mian Wu; Lijian Hui; Huafeng Zhang; Ping Gao
Journal:  EMBO J       Date:  2017-04-04       Impact factor: 11.598

10.  Hypoxia Signaling Pathway in Stem Cell Regulation: Good and Evil.

Authors:  Xinxin Huang; Thao Trinh; Arafat Aljoufi; Hal E Broxmeyer
Journal:  Curr Stem Cell Rep       Date:  2018-04-30
View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.