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AMPK Causes Cell Cycle Arrest in LKB1-Deficient Cells via Activation of CAMKK2
Sarah Fogarty1, Fiona A Ross1, Diana Vara Ciruelos1
1Division of Cell Signalling & Immunology, College of Life Sciences, University of Dundee, Dundee, Scotland, United Kingdom.
Unlabelled:
The AMP-activated protein kinase (AMPK) is activated by phosphorylation at Thr172, either by the tumor suppressor kinase LKB1 or by an alternate pathway involving the Ca(2+)/calmodulin-dependent kinase, CAMKK2. Increases in AMP:ATP and ADP:ATP ratios, signifying energy deficit, promote allosteric activation and net Thr172 phosphorylation mediated by LKB1, so that the LKB1-AMPK pathway acts as an energy sensor. Many tumor cells carry loss-of-function mutations in the STK11 gene encoding LKB1, but LKB1 reexpression in these cells causes cell-cycle arrest. Therefore, it was investigated as to whether arrest by LKB1 is caused by activation of AMPK or of one of the AMPK-related kinases, which are also dependent on LKB1 but are not activated by CAMKK2. In three LKB1-null tumor cell lines, treatment with the Ca(2+) ionophore A23187 caused a G1 arrest that correlated with AMPK activation and Thr172 phosphorylation. In G361 cells, expression of a truncated, Ca(2+)/calmodulin-independent CAMKK2 mutant also caused G1 arrest similar to that caused by expression of LKB1, while expression of a dominant-negative AMPK mutant, or a double knockout of both AMPK-α subunits, also prevented the cell-cycle arrest caused by A23187. These mechanistic findings confirm that AMPK activation triggers cell-cycle arrest, and also suggest that the rapid proliferation of LKB1-null tumor cells is due to lack of the restraining influence of AMPK. However, cell-cycle arrest can be restored by reexpressing LKB1 or a constitutively active CAMKK2, or by pharmacologic agents that increase intracellular Ca(2+) and thus activate endogenous CAMKK2.
Implications:
Evidence here reveals that the rapid growth and proliferation of cancer cells lacking the tumor suppressor LKB1 is due to reduced activity of AMPK, and suggests a therapeutic approach by which this block might be circumvented. Mol Cancer Res; 14(8); 683-95. ©2016 AACR.
Insights
AMP-activated protein kinase (AMPK) activation by LKB1 or CAMKK2 suppresses tumor cell growth. Restoring AMPK activity in LKB1-deficient cancers halts proliferation, offering a potential therapeutic strategy.
Area of Science:
- Molecular biology and cancer research focusing on cellular energy sensing and tumor suppressor pathways.
Background:
- AMP-activated protein kinase (AMPK) is a critical energy sensor, activated by LKB1 or CAMKK2.
- LKB1, encoded by STK11, is a tumor suppressor; its loss-of-function mutations are common in cancers.
- LKB1 reexpression in tumor cells induces cell-cycle arrest, but the precise mechanism is debated.
Purpose of the Study:
- To investigate whether LKB1-mediated cell-cycle arrest is dependent on AMPK activation.
- To elucidate the role of AMPK and its upstream kinases (LKB1, CAMKK2) in tumor cell proliferation.
- To explore therapeutic strategies for LKB1-deficient tumors by targeting AMPK activation.
Main Methods:
- Utilized three LKB1-null tumor cell lines.
- Treated cells with the Ca(2+) ionophore A23187 to activate CAMKK2-AMPK pathway.
- Expressed a dominant-negative AMPK mutant and performed AMPK-α subunit knockouts.
- Expressed a constitutively active CAMKK2 mutant.
Main Results:
- A23187 treatment induced G1 arrest correlating with AMPK activation and Thr172 phosphorylation in LKB1-null cells.
- Expression of a constitutively active CAMKK2 mutant mimicked LKB1-induced G1 arrest.
- Inhibition of AMPK or its subunits blocked A23187-induced cell-cycle arrest.
- LKB1-null tumor cells exhibit rapid proliferation due to impaired AMPK activity.
Conclusions:
- AMPK activation is confirmed to trigger cell-cycle arrest, independent of LKB1.
- Loss of LKB1 leads to reduced AMPK activity, promoting uncontrolled tumor cell proliferation.
- Restoring cell-cycle arrest is achievable via LKB1 reexpression, CAMKK2 activation, or pharmacologic agents targeting intracellular Ca(2+).
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