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Monitoring Hippo Signaling Pathway Activity Using a Luciferase-based Large Tumor Suppressor (LATS) Biosensor
Published on: September 13, 2018
Histone acetylation-mediated regulation of the Hippo pathway
Dipanjan Basu1, Miguel Reyes-Múgica, Abdelhadi Rebbaa
1Department of Pathology, University of Pittsburgh and the Children's Hospital of Pittsburgh of UPMC, Pittsburgh, Pennsylvania, United States of America.
Abstract:
The Hippo pathway is a signaling cascade recently found to play a key role in tumorigenesis therefore understanding the mechanisms that regulate it should open new opportunities for cancer treatment. Available data indicate that this pathway is controlled by signals from cell-cell junctions however the potential role of nuclear regulation has not yet been described. Here we set out to verify this possibility and define putative mechanism(s) by which it might occur. By using a luciferase reporter of the Hippo pathway, we measured the effects of different nuclear targeting drugs and found that chromatin-modifying agents, and to a lesser extent certain DNA damaging drugs, strongly induced activity of the reporter. This effect was not mediated by upstream core components (i.e. Mst, Lats) of the Hippo pathway, but through enhanced levels of the Hippo transducer TAZ. Investigation of the underlying mechanism led to the finding that cancer cell exposure to histone deacetylase inhibitors induced secretion of growth factors and cytokines, which in turn activate Akt and inhibit the GSK3 beta associated protein degradation complex in drug-affected as well as in their neighboring cells. Consequently, expression of EMT genes, cell migration and resistance to therapy were induced. These processes were suppressed by using pyrvinium, a recently described small molecule activator of the GSK 3 beta associated degradation complex. Overall, these findings shed light on a previously unrecognized phenomenon by which certain anti-cancer agents may paradoxically promote tumor progression by facilitating stabilization of the Hippo transducer TAZ and inducing cancer cell migration and resistance to therapy. Pharmacological targeting of the GSK3 beta associated degradation complex may thus represent a unique approach to treat cancer.
Insights
Certain anti-cancer drugs can paradoxically promote tumor progression by stabilizing the Hippo pathway transducer TAZ, enhancing cancer cell migration and therapy resistance. Targeting the GSK3 beta associated degradation complex may offer a novel cancer treatment strategy.
Area of Science:
- Oncology
- Molecular Biology
- Cell Signaling
Background:
- The Hippo pathway is crucial in tumorigenesis, with its regulation by cell-cell junctions well-established.
- Nuclear regulation of the Hippo pathway remains largely unexplored, presenting a gap in understanding cancer treatment mechanisms.
Purpose of the Study:
- To investigate the role of nuclear regulation in controlling the Hippo pathway.
- To identify mechanisms by which nuclear-acting drugs influence Hippo pathway activity.
Main Methods:
- Utilized a luciferase reporter assay to measure Hippo pathway activity.
- Assessed the impact of various nuclear-targeting drugs, including chromatin-modifying and DNA-damaging agents.
- Investigated downstream effects including gene expression, cell migration, and drug resistance.
Main Results:
- Chromatin-modifying agents significantly increased Hippo pathway reporter activity, mediated by enhanced TAZ levels, not upstream components.
- Histone deacetylase inhibitors induced growth factor secretion, activating Akt and inhibiting GSK3 beta degradation, leading to EMT, migration, and therapy resistance.
- Pyrvinium, a GSK3 beta activator, suppressed these pro-tumorigenic effects.
Conclusions:
- Certain anti-cancer drugs can paradoxically promote tumor progression via TAZ stabilization, inducing cancer cell migration and therapy resistance.
- Nuclear regulation of the Hippo pathway by chromatin modifiers represents a novel mechanism influencing cancer progression.
- Targeting the GSK3 beta associated degradation complex offers a potential therapeutic strategy against cancer.
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