Literature DB >> 22893790

AMPKα2 Suppresses Murine Embryonic Fibroblast Transformation and Tumorigenesis.

Kathryn N Phoenix1, Charan V Devarakonda, Melissa M Fox, Laura E Stevens, Kevin P Claffey.   

Abstract

AMP-activated kinase (AMPK) is a key metabolic sensor and stress signaling kinase. AMPK activity is known to suppress anabolic processes such as protein and lipid biosynthesis and promote energy-producing pathways including fatty acid oxidation, resulting in increased cellular energy. In addition, AMPK localizes to centrosomes during cell division, plays a role in cellular polarization, and directly targets p53, affecting apoptosis. Two distinct catalytic AMPKα isoforms exist: α1 and α2. Multiple reports indicate that both common and distinct functions exist for each of the 2 α isoforms. AMPK activation has been shown to repress tumor growth, and it has been suggested that AMPK may function as a metabolic tumor suppressor. To evaluate the potential role of each of the AMPKα isoforms in modulating cellular transformation, susceptibility to Ras-induced transformation was evaluated in normal murine embryonic fibroblasts (MEFs) obtained from genetically deleted AMPKα1- or AMPKα2-null mice. This study demonstrated that while AMPKα1 is the dominant AMPK isoform expressed in MEFs, only the AMPKα2-null MEFs displayed increased susceptibility to H-RasV12 transformation in vitro and tumorigenesis in vivo. Conversely, AMPKα1-null MEFs, which demonstrated compensation with increased expression of AMPKα2, displayed minimal transformation susceptibility, decreased cell survival, decreased cell proliferation, and increased apoptosis. Finally, this study demonstrates that AMPKα2 was selectively responsible for targeting p53, thus contributing to the suppression of transformation and tumorigenic mechanisms.

Entities:  

Keywords:  AMPK; cancer; p53; transformation

Year:  2012        PMID: 22893790      PMCID: PMC3415672          DOI: 10.1177/1947601912452883

Source DB:  PubMed          Journal:  Genes Cancer        ISSN: 1947-6019


  51 in total

1.  Activation of AMP-activated protein kinase induces p53-dependent apoptotic cell death in response to energetic stress.

Authors:  Rintaro Okoshi; Toshinori Ozaki; Hideki Yamamoto; Kiyohiro Ando; Nami Koida; Sayaka Ono; Tadayuki Koda; Takehiko Kamijo; Akira Nakagawara; Harutoshi Kizaki
Journal:  J Biol Chem       Date:  2007-12-04       Impact factor: 5.157

2.  Metformin suppresses intestinal polyp growth in ApcMin/+ mice.

Authors:  Ayako Tomimoto; Hiroki Endo; Michiko Sugiyama; Toshio Fujisawa; Kunihiro Hosono; Hirokazu Takahashi; Noriko Nakajima; Yoji Nagashima; Koichiro Wada; Hitoshi Nakagama; Atsushi Nakajima
Journal:  Cancer Sci       Date:  2008-09-18       Impact factor: 6.716

3.  AMPKα modulation in cancer progression: multilayer integrative analysis of the whole transcriptome in Asian gastric cancer.

Authors:  Yon Hui Kim; Han Liang; Xiuping Liu; Ju-Seog Lee; Jae Yong Cho; Jae-Ho Cheong; Hoguen Kim; Min Li; Thomas J Downey; Matthew D Dyer; Yongming Sun; Jingtao Sun; Ellen M Beasley; Hyun Cheol Chung; Sung Hoon Noh; John N Weinstein; Chang-Gong Liu; Garth Powis
Journal:  Cancer Res       Date:  2012-03-20       Impact factor: 12.701

4.  AMP-activated protein kinase induces a p53-dependent metabolic checkpoint.

Authors:  Russell G Jones; David R Plas; Sara Kubek; Monica Buzzai; James Mu; Yang Xu; Morris J Birnbaum; Craig B Thompson
Journal:  Mol Cell       Date:  2005-04-29       Impact factor: 17.970

5.  Oncogenic ras provokes premature cell senescence associated with accumulation of p53 and p16INK4a.

Authors:  M Serrano; A W Lin; M E McCurrach; D Beach; S W Lowe
Journal:  Cell       Date:  1997-03-07       Impact factor: 41.582

Review 6.  AMP-activated/SNF1 protein kinases: conserved guardians of cellular energy.

Authors:  D Grahame Hardie
Journal:  Nat Rev Mol Cell Biol       Date:  2007-10       Impact factor: 94.444

7.  Metformin induces unique biological and molecular responses in triple negative breast cancer cells.

Authors:  Bolin Liu; Zeying Fan; Susan M Edgerton; Xin-Sheng Deng; Irina N Alimova; Stuart E Lind; Ann D Thor
Journal:  Cell Cycle       Date:  2009-07-21       Impact factor: 4.534

Review 8.  Physiological role of AMP-activated protein kinase (AMPK): insights from knockout mouse models.

Authors:  B Viollet; F Andreelli; S B Jørgensen; C Perrin; D Flamez; J Mu; J F P Wojtaszewski; F C Schuit; M Birnbaum; E Richter; R Burcelin; S Vaulont
Journal:  Biochem Soc Trans       Date:  2003-02       Impact factor: 5.407

9.  Therapeutic metformin/AMPK activation promotes the angiogenic phenotype in the ERalpha negative MDA-MB-435 breast cancer model.

Authors:  Kathryn N Phoenix; Frank Vumbaca; Kevin P Claffey
Journal:  Breast Cancer Res Treat       Date:  2008-02-07       Impact factor: 4.872

10.  Histological evaluation of AMPK signalling in primary breast cancer.

Authors:  Sirwan M Hadad; Lee Baker; Philip R Quinlan; Katherine E Robertson; Susan E Bray; George Thomson; David Kellock; Lee B Jordan; Colin A Purdie; David G Hardie; Stewart Fleming; Alastair M Thompson
Journal:  BMC Cancer       Date:  2009-09-01       Impact factor: 4.430

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  30 in total

Review 1.  Evolving Lessons on the Complex Role of AMPK in Normal Physiology and Cancer.

Authors:  Biplab Dasgupta; Rishi Raj Chhipa
Journal:  Trends Pharmacol Sci       Date:  2015-12-20       Impact factor: 14.819

2.  AMPKα2 Regulates Bladder Cancer Growth through SKP2-Mediated Degradation of p27.

Authors:  Stavros Kopsiaftis; Katie L Sullivan; Isha Garg; John A Taylor; Kevin P Claffey
Journal:  Mol Cancer Res       Date:  2016-09-16       Impact factor: 5.852

Review 3.  mTOR signaling in tumorigenesis.

Authors:  Kai Xu; Pengda Liu; Wenyi Wei
Journal:  Biochim Biophys Acta       Date:  2014-11-01

Review 4.  A spatiotemporal hypothesis for the regulation, role, and targeting of AMPK in prostate cancer.

Authors:  Ayesha S Khan; Daniel E Frigo
Journal:  Nat Rev Urol       Date:  2017-02-01       Impact factor: 14.432

Review 5.  The mitochondrial H(+)-ATP synthase and the lipogenic switch: new core components of metabolic reprogramming in induced pluripotent stem (iPS) cells.

Authors:  Alejandro Vazquez-Martin; Bruna Corominas-Faja; Sílvia Cufi; Luciano Vellon; Cristina Oliveras-Ferraros; Octavio J Menendez; Jorge Joven; Ruth Lupu; Javier A Menendez
Journal:  Cell Cycle       Date:  2012-01-15       Impact factor: 4.534

6.  Prognostic Significance of AMP-Dependent Kinase Alpha Expression in Cervical Cancer.

Authors:  Chel Hun Choi; Joon-Yong Chung; Hanbyoul Cho; Haruhisa Kitano; Eileen Chang; Kris Ylaya; Eun Joo Chung; Jae-Hoon Kim; Stephen M Hewitt
Journal:  Pathobiology       Date:  2015-08-25       Impact factor: 4.342

Review 7.  Functional characterization of AMP-activated protein kinase signaling in tumorigenesis.

Authors:  Ji Cheng; Tao Zhang; Hongbin Ji; Kaixiong Tao; Jianping Guo; Wenyi Wei
Journal:  Biochim Biophys Acta       Date:  2016-09-25

Review 8.  Identifying molecular drivers of gastric cancer through next-generation sequencing.

Authors:  Han Liang; Yon Hui Kim
Journal:  Cancer Lett       Date:  2012-11-20       Impact factor: 8.679

Review 9.  AMPK: a contextual oncogene or tumor suppressor?

Authors:  Jiyong Liang; Gordon B Mills
Journal:  Cancer Res       Date:  2013-05-03       Impact factor: 12.701

10.  AMPKα1 deficiency promotes cellular proliferation and DNA damage via p21 reduction in mouse embryonic fibroblasts.

Authors:  Hairong Xu; Yanhong Zhou; Kathleen A Coughlan; Ye Ding; Shaobin Wang; Yue Wu; Ping Song; Ming-Hui Zou
Journal:  Biochim Biophys Acta       Date:  2014-10-13
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