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Published on: February 27, 2019
HMGA2 as a functional antagonist of PARP1 inhibitors in tumor cells
Sabine Hombach-Klonisch1, Forouh Kalantari1, Manoj Reddy Medapati1
1Department of Human Anatomy and Cell Science, Rady Faculty of Health Sciences, Max Rady College of Medicine, University of Manitoba, Winnipeg, Canada.
Abstract:
Poly(ADP-ribose) polymerase 1 inhibitors alone or in combination with DNA damaging agents are promising clinical drugs in the treatment of cancer. However, there is a need to understand the molecular mechanisms of resistance to PARP1 inhibitors. Expression of HMGA2 in cancer is associated with poor prognosis for patients. Here, we investigated the novel relationship between HMGA2 and PARP1 in DNA damage-induced PARP1 activity. We used human triple-negative breast cancer and fibrosarcoma cell lines to demonstrate that HMGA2 colocalizes and interacts with PARP1. High cellular HMGA2 levels correlated with increased DNA damage-induced PARP1 activity, which was dependent on functional DNA-binding AT-hook domains of HMGA2. HMGA2 inhibited PARP1 trapping to DNA and counteracted the cytotoxic effect of PARP inhibitors. Consequently, HMGA2 decreased caspase 3/7 induction and increased cell survival upon treatment with the alkylating methyl methanesulfonate alone or in combination with the PARP inhibitor AZD2281 (olaparib). HMGA2 increased mitochondrial oxygen consumption rate and spare respiratory capacity and increased NAMPT levels, suggesting metabolic support for enhanced PARP1 activity upon DNA damage. Our data showed that expression of HMGA2 in cancer cells reduces sensitivity to PARP inhibitors and suggests that targeting HMGA2 in combination with PARP inhibition may be a promising new therapeutic approach.
Insights
High mobility group AT-hook 2 (HMGA2) protein can reduce cancer cells' sensitivity to Poly(ADP-ribose) polymerase 1 (PARP1) inhibitors by interacting with PARP1 and supporting its activity. Targeting HMGA2 may improve PARP1 inhibitor efficacy.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Poly(ADP-ribose) polymerase 1 (PARP1) inhibitors are promising cancer therapeutics, but resistance mechanisms require elucidation.
- High mobility group AT-hook 2 (HMGA2) expression in cancer correlates with poor patient prognosis.
Purpose of the Study:
- To investigate the novel relationship between HMGA2 and PARP1 activity in response to DNA damage.
- To determine if HMGA2 influences sensitivity to PARP1 inhibitors in cancer cells.
Main Methods:
- Utilized human triple-negative breast cancer and fibrosarcoma cell lines.
- Assessed HMGA2 and PARP1 colocalization and interaction using co-immunoprecipitation and microscopy.
- Measured DNA damage-induced PARP1 activity, cell survival, and metabolic parameters (oxygen consumption, NAMPT levels).
Main Results:
- HMGA2 colocalizes and interacts with PARP1 in cancer cells.
- High HMGA2 levels increase DNA damage-induced PARP1 activity, dependent on HMGA2's DNA-binding domains.
- HMGA2 inhibits PARP1 trapping to DNA, counteracts PARP inhibitor cytotoxicity, and enhances cell survival.
- HMGA2 upregulates mitochondrial respiration and NAMPT, suggesting metabolic support for PARP1 activity.
Conclusions:
- HMGA2 expression confers resistance to PARP1 inhibitors in cancer cells.
- Targeting HMGA2 in combination with PARP inhibition represents a potential therapeutic strategy to overcome resistance.
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