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Published on: December 1, 2016
Evidence for tankyrases as antineoplastic targets in lung cancer
Alexander M Busch1, Kevin C Johnson, Radu V Stan
1Department of Pharmacology and Toxicology, Geisel School of Medicine at Dartmouth, Hanover, NH 03755, USA.
Background:
New pharmacologic targets are urgently needed to treat or prevent lung cancer, the most common cause of cancer death for men and women. This study identified one such target. This is the canonical Wnt signaling pathway, which is deregulated in cancers, including those lacking adenomatous polyposis coli or β-catenin mutations. Two poly-ADP-ribose polymerase (PARP) enzymes regulate canonical Wnt activity: tankyrase (TNKS) 1 and TNKS2. These enzymes poly-ADP-ribosylate (PARsylate) and destabilize axin, a key component of the β-catenin phosphorylation complex.
Methods:
This study used comprehensive gene profiles to uncover deregulation of the Wnt pathway in murine transgenic and human lung cancers, relative to normal lung. Antineoplastic consequences of genetic and pharmacologic targeting of TNKS in murine and human lung cancer cell lines were explored, and validated in vivo in mice by implantation of murine transgenic lung cancer cells engineered with reduced TNKS expression relative to controls.
Results:
Microarray analyses comparing Wnt pathway members in malignant versus normal tissues of a murine transgenic cyclin E lung cancer model revealed deregulation of Wnt pathway components, including TNKS1 and TNKS2. Real-time PCR assays independently confirmed these results in paired normal-malignant murine and human lung tissues. Individual treatments of a panel of human and murine lung cancer cell lines with the TNKS inhibitors XAV939 and IWR-1 dose-dependently repressed cell growth and increased cellular axin 1 and tankyrase levels. These inhibitors also repressed expression of a Wnt-responsive luciferase construct, implicating the Wnt pathway in conferring these antineoplastic effects. Individual or combined knockdown of TNKS1 and TNKS2 with siRNAs or shRNAs reduced lung cancer cell growth, stabilized axin, and repressed tumor formation in murine xenograft and syngeneic lung cancer models.
Conclusions:
Findings reported here uncovered deregulation of specific components of the Wnt pathway in both human and murine lung cancer models. Repressing TNKS activity through either genetic or pharmacological approaches antagonized canonical Wnt signaling, reduced murine and human lung cancer cell line growth, and decreased tumor formation in mouse models. Taken together, these findings implicate the use of TNKS inhibitors to target the Wnt pathway to combat lung cancer.
Insights
Targeting tankyrase (TNKS) enzymes in the Wnt pathway shows promise for lung cancer treatment. Inhibiting TNKS reduces cancer cell growth and tumor formation, offering a new therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Signaling Pathways
Background:
- Lung cancer remains a leading cause of cancer-related mortality, necessitating novel therapeutic targets.
- The canonical Wnt signaling pathway is frequently dysregulated in various cancers, including lung cancer.
- Tankyrase (TNKS) 1 and TNKS2 enzymes regulate Wnt activity by destabilizing axin, a key protein in the β-catenin phosphorylation complex.
Purpose of the Study:
- To investigate the role of the Wnt signaling pathway and TNKS enzymes in lung cancer.
- To evaluate the antineoplastic effects of targeting TNKS in preclinical lung cancer models.
Main Methods:
- Comprehensive gene profiling to identify Wnt pathway deregulation in murine and human lung cancers.
- Genetic and pharmacologic inhibition of TNKS in lung cancer cell lines and in vivo mouse models.
- Analysis of Wnt pathway components, cell growth, and tumor formation following TNKS targeting.
Main Results:
- Deregulation of Wnt pathway components, including TNKS1 and TNKS2, was observed in lung cancer tissues.
- TNKS inhibitors (XAV939, IWR-1) dose-dependently repressed lung cancer cell growth and increased axin levels.
- Genetic or pharmacologic inhibition of TNKS reduced tumor formation in vivo and repressed Wnt signaling.
Conclusions:
- The Wnt pathway is specifically deregulated in lung cancer, with TNKS playing a key role.
- Targeting TNKS activity, through genetic or pharmacologic means, effectively antagonizes Wnt signaling.
- TNKS inhibitors represent a promising therapeutic strategy for combating lung cancer.
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