Literature DB >> 29133590

Genotoxic Damage Activates the AMPK-α1 Isoform in the Nucleus via Ca2+/CaMKK2 Signaling to Enhance Tumor Cell Survival.

Diana Vara-Ciruelos1, Madhumita Dandapani1, Alexander Gray1, Ejaife O Egbani2, A Mark Evans2, D Grahame Hardie3.   

Abstract

Many genotoxic cancer treatments activate AMP-activated protein kinase (AMPK), but the mechanisms of AMPK activation in response to DNA damage, and its downstream consequences, have been unclear. In this study, etoposide activates the α1 but not the α2 isoform of AMPK, primarily within the nucleus. AMPK activation is independent of ataxia-telangiectasia mutated (ATM), a DNA damage-activated kinase, and the principal upstream kinase for AMPK, LKB1, but correlates with increased nuclear Ca2+ and requires the Ca2+/calmodulin-dependent kinase, CaMKK2. Intriguingly, Ca2+-dependent activation of AMPK in two different LKB1-null cancer cell lines caused G1-phase cell-cycle arrest, and enhanced cell viability/survival after etoposide treatment, with both effects being abolished by knockout of AMPK-α1 and α2. The CDK4/6 inhibitor palbociclib also caused G1 arrest in G361 but not HeLa cells and, consistent with this, enhanced cell survival after etoposide treatment only in G361 cells. These results suggest that AMPK activation protects cells against etoposide by limiting entry into S-phase, where cells would be more vulnerable to genotoxic stress.Implications: These results reveal that the α1 isoform of AMPK promotes tumorigenesis by protecting cells against genotoxic stress, which may explain findings that the gene encoding AMPK-α1 (but not -α2) is amplified in some human cancers. Furthermore, α1-selective inhibitors might enhance the anticancer effects of genotoxic-based therapies. Mol Cancer Res; 16(2); 345-57. ©2017 AACR. ©2017 American Association for Cancer Research.

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Year:  2017        PMID: 29133590     DOI: 10.1158/1541-7786.MCR-17-0323

Source DB:  PubMed          Journal:  Mol Cancer Res        ISSN: 1541-7786            Impact factor:   5.852


  18 in total

1.  Genetic Analysis Reveals AMPK Is Required to Support Tumor Growth in Murine Kras-Dependent Lung Cancer Models.

Authors:  Lillian J Eichner; Sonja N Brun; Sébastien Herzig; Nathan P Young; Stephanie D Curtis; David B Shackelford; Maxim N Shokhirev; Mathias Leblanc; Liliana I Vera; Amanda Hutchins; Debbie S Ross; Reuben J Shaw; Robert U Svensson
Journal:  Cell Metab       Date:  2018-11-08       Impact factor: 27.287

Review 2.  AMPK: restoring metabolic homeostasis over space and time.

Authors:  Elijah Trefts; Reuben J Shaw
Journal:  Mol Cell       Date:  2021-09-16       Impact factor: 19.328

3.  Caspase cleavage and nuclear retention of the energy sensor AMPK-α1 during apoptosis.

Authors:  Anees Rahman Cheratta; Faisal Thayyullathil; Simon A Hawley; Fiona A Ross; Abdelmajdid Atrih; Douglas J Lamont; Siraj Pallichankandy; Karthikeyan Subburayan; Ameer Alakkal; Rachid Rezgui; Alex Gray; D Grahame Hardie; Sehamuddin Galadari
Journal:  Cell Rep       Date:  2022-05-03       Impact factor: 9.995

4.  Spatial regulation of AMPK signaling revealed by a sensitive kinase activity reporter.

Authors:  Danielle L Schmitt; Stephanie D Curtis; Anne C Lyons; Jin-Fan Zhang; Mingyuan Chen; Catherine Y He; Sohum Mehta; Reuben J Shaw; Jin Zhang
Journal:  Nat Commun       Date:  2022-07-05       Impact factor: 17.694

Review 5.  Spatial control of AMPK signaling at subcellular compartments.

Authors:  Anoop Singh Chauhan; Li Zhuang; Boyi Gan
Journal:  Crit Rev Biochem Mol Biol       Date:  2020-02-18       Impact factor: 8.250

6.  Ca2+-Stimulated AMPK-Dependent Phosphorylation of Exo1 Protects Stressed Replication Forks from Aberrant Resection.

Authors:  Shan Li; Zeno Lavagnino; Delphine Lemacon; Lingzhen Kong; Alessandro Ustione; Xuewen Ng; Yuanya Zhang; Yingchun Wang; Bin Zheng; Helen Piwnica-Worms; Alessandro Vindigni; David W Piston; Zhongsheng You
Journal:  Mol Cell       Date:  2019-04-30       Impact factor: 17.970

7.  Nuclear UHRF1 is a gate-keeper of cellular AMPK activity and function.

Authors:  Xiang Xu; Guangjin Ding; Caizhi Liu; Yuhan Ding; Xiaoxin Chen; Xiaoli Huang; Chen-Song Zhang; Shanxin Lu; Yunpeng Zhang; Yuanyong Huang; Zhaosu Chen; Wei Wei; Lujian Liao; Shu-Hai Lin; Jingya Li; Wei Liu; Jiwen Li; Sheng-Cai Lin; Xinran Ma; Jiemin Wong
Journal:  Cell Res       Date:  2021-09-24       Impact factor: 25.617

8.  AMPK α1 Downregulates ROS Levels Through Regulating Trx Leading to Dysfunction of Apoptosis in Non-Small Cell Lung Cancer.

Authors:  Daohui Gong; Ying Li; Yuxiu Wang; Beiyuan Chi; Jun Zhang; Jianjun Gu; JunJun Yang; Xingxiang Xu; Suwei Hu; Lingfeng Min
Journal:  Onco Targets Ther       Date:  2020-06-23       Impact factor: 4.147

9.  CAMKK2 Promotes Prostate Cancer Independently of AMPK via Increased Lipogenesis.

Authors:  Lucy Penfold; Angela Woods; Phillip Muckett; Alexander Yu Nikitin; Tera R Kent; Shuai Zhang; Rebecca Graham; Alice Pollard; David Carling
Journal:  Cancer Res       Date:  2018-09-21       Impact factor: 13.312

Review 10.  Interplay Between Calcium and AMPK Signaling in Human Cytomegalovirus Infection.

Authors:  Diana M Dunn; Joshua Munger
Journal:  Front Cell Infect Microbiol       Date:  2020-07-29       Impact factor: 5.293

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