Literature DB >> 29991651

IKK promotes cytokine-induced and cancer-associated AMPK activity and attenuates phenformin-induced cell death in LKB1-deficient cells.

Ricardo J Antonia1,2, Albert S Baldwin3,2.   

Abstract

The 5' AMP-activated protein kinase (AMPK) is an energy sensor that is activated upon phosphorylation of Thr172 in its activation loop by the kinase LKB1, CAMKK2, or TAK1. TAK1-dependent AMPK phosphorylation of Thr172 is less well characterized than phosphorylation of this site by LKB1 or CAMKK2. An important target of TAK1 is IκB kinase (IKK), which controls the activation of the transcription factor NF-κB. We tested the hypothesis that IKK acted downstream of TAK1 to activate AMPK by phosphorylating Thr172 IKK was required for the phosphorylation of Thr172 in AMPK in response to treatment with the inflammatory cytokine IL-1β or TNF-α or upon TAK1 overexpression. In addition, IKK regulated basal AMPK Thr172 phosphorylation in several cancer cell types independently of TAK1, indicating that other modes of IKK activation could stimulate AMPK. We found that IKK directly phosphorylated AMPK at Thr172 independently of the tumor suppressor LKB1 or energy stress. Accordingly, in LKB1-deficient cells, IKK inhibition reduced AMPK Thr172 phosphorylation in response to the mitochondrial inhibitor phenformin. This response led to enhanced apoptosis and suggests that IKK inhibition in combination with phenformin could be used clinically to treat patients with LKB1-deficient cancers.
Copyright © 2018 The Authors, some rights reserved; exclusive licensee American Association for the Advancement of Science. No claim to original U.S. Government Works.

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Year:  2018        PMID: 29991651     DOI: 10.1126/scisignal.aan5850

Source DB:  PubMed          Journal:  Sci Signal        ISSN: 1945-0877            Impact factor:   8.192


  9 in total

1.  GPR35 promotes glycolysis, proliferation, and oncogenic signaling by engaging with the sodium potassium pump.

Authors:  Georg Schneditz; Joshua E Elias; Ester Pagano; M Zaeem Cader; Svetlana Saveljeva; Kathleen Long; Subhankar Mukhopadhyay; Maryam Arasteh; Trevor D Lawley; Gordon Dougan; Andrew Bassett; Tom H Karlsen; Arthur Kaser; Nicole C Kaneider
Journal:  Sci Signal       Date:  2019-01-01       Impact factor: 8.192

Review 2.  AMPK and the Challenge of Treating Hypoxic Pulmonary Hypertension.

Authors:  Karen Flores; Patricia Siques; Julio Brito; Silvia M Arribas
Journal:  Int J Mol Sci       Date:  2022-06-01       Impact factor: 6.208

3.  IKKβ mediates homeostatic function in inflammation via competitively phosphorylating AMPK and IκBα.

Authors:  Juan Liu; Yuxin Zhuang; Jianlin Wu; Qiang Wu; Meixian Liu; Yue Zhao; Zhongqiu Liu; Caiyan Wang; Linlin Lu; Yingjiao Meng; Kawai Lei; Xiaojuan Li; Qibiao Wu; Elaine Lai-Han Leung; Zhengyang Guo; Liang Liu; Ting Li
Journal:  Acta Pharm Sin B       Date:  2021-09-17       Impact factor: 11.413

4.  Punicalagin ameliorates collagen-induced arthritis by downregulating M1 macrophage and pyroptosis via NF-κB signaling pathway.

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Journal:  Sci China Life Sci       Date:  2021-06-10       Impact factor: 6.038

Review 5.  Activation of AMPK under Hypoxia: Many Roads Leading to Rome.

Authors:  Franziska Dengler
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Journal:  J Exp Med       Date:  2021-02-01       Impact factor: 14.307

Review 7.  Podocyte Autophagy in Homeostasis and Disease.

Authors:  Qisheng Lin; Khadija Banu; Zhaohui Ni; Jeremy S Leventhal; Madhav C Menon
Journal:  J Clin Med       Date:  2021-03-12       Impact factor: 4.964

Review 8.  Multifaceted Role of AMPK in Viral Infections.

Authors:  Maimoona Shahid Bhutta; Elisa S Gallo; Ronen Borenstein
Journal:  Cells       Date:  2021-05-06       Impact factor: 6.600

Review 9.  Regulation and repurposing of nutrient sensing and autophagy in innate immunity.

Authors:  Julia Sanchez-Garrido; Avinash R Shenoy
Journal:  Autophagy       Date:  2020-07-05       Impact factor: 16.016

  9 in total

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