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Published on: January 31, 2018
AMP-activated protein kinase (AMPK) beyond metabolism: a novel genomic stress sensor participating in the DNA damage
Toran Sanli1, Gregory R Steinberg2, Gurmit Singh3
1Translational Radiation Biology Laboratory; Juravinski Cancer Center; Hamilton, ON Canada; Department of Oncology; McMaster University; Hamilton, ON Canada.
Abstract:
AMP-activated protein kinase (AMPK), an established metabolic stress sensor, has gained popularity in cancer biology due to its ability to control cellular growth and mediate cell cycle checkpoints in cancer cells in response to low energy levels. AMPK is a key effector of the tumor suppressor liver kinase B 1 (LKB1) which inhibits the cellular growth mediator mammalian target of rapamycin (mTOR) and activates checkpoint mediators such as p53 and the cyclin dependent kinase inhibitors p21(cip1) and p27(kip1). However, recent work describes a novel function for AMPK as a sensor of genomic stress and a participant of the DNA damage response (DDR) pathway. Ionizing radiation and chemotherapy activate AMPK in cancer cells to mediate signal transduction downstream of ataxia telangiectasia mutated (ATM) to activate p53- p21(cip1)/p27(kip1) and inhibit mTOR. We discuss evidence on the transcriptional and post-translational regulation of AMPK by ionizing radiation and the role of the enzyme as a mediator of chemo- and radiation sensitivity in epithelial cancer cells. Furthermore, we review data on the participation of AMPK in cytokinesis and observations suggesting a physical association of this enzyme with the mitotic apparatus. The evidence available to date suggests that AMPK is a point of convergence of metabolic and genomic stress signals, which (1) control the activity of growth mediators, (2) propagate DDR, and (3) mediate the anti-proliferative effects of common cytotoxic cancer therapy such as radiation and chemotherapy. This highlights the importance of targeting AMPK with novel cancer therapeutics.
Insights
AMP-activated protein kinase (AMPK) senses both metabolic and genomic stress in cancer cells. This enzyme regulates cell growth, DNA damage response, and mediates sensitivity to chemotherapy and radiation therapy.
Area of Science:
- Cancer Biology
- Molecular Biology
- Cellular Metabolism
Background:
- AMP-activated protein kinase (AMPK) is a known metabolic stress sensor regulating cellular growth and cell cycle checkpoints.
- AMPK, influenced by the tumor suppressor LKB1, inhibits mTOR and activates p53, p21(cip1), and p27(kip1).
Purpose of the Study:
- To explore the novel role of AMPK as a sensor of genomic stress and a participant in the DNA damage response (DDR) pathway.
- To review the regulation and function of AMPK in response to DNA damage and its role in cancer therapy.
Main Methods:
- Review of existing literature on AMPK's role in cancer biology, DNA damage response, and therapeutic sensitivity.
- Analysis of evidence on AMPK's transcriptional and post-translational regulation by ionizing radiation.
- Examination of AMPK's involvement in cytokinesis and association with the mitotic apparatus.
Main Results:
- AMPK is activated by ionizing radiation and chemotherapy, mediating signaling downstream of ATM to activate p53-p21(cip1)/p27(kip1) and inhibit mTOR.
- AMPK is regulated transcriptionally and post-translationally by ionizing radiation.
- AMPK participates in cytokinesis and associates with the mitotic apparatus.
Conclusions:
- AMPK integrates metabolic and genomic stress signals, controlling growth mediators and propagating the DDR.
- AMPK mediates the anti-proliferative effects of radiation and chemotherapy in epithelial cancers.
- Targeting AMPK presents a promising strategy for novel cancer therapeutics.
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