AKT-induced tamoxifen resistance is overturned by RRM2 inhibition
Khyati N Shah1, Kshama R Mehta, David Peterson
1Thomas J. Long School of Pharmacy & Health Sciences, University of the Pacific, 751 Brookside Road, Stockton, CA 95211. jfaridi@pacific.edu.
Unlabelled:
Acquired tamoxifen resistance develops in the majority of hormone-responsive breast cancers and frequently involves overexpression of the PI3K/AKT axis. Here, breast cancer cells with elevated endogenous AKT or overexpression of activated AKT exhibited tamoxifen-stimulated cell proliferation and enhanced cell motility. To gain mechanistic insight on AKT-induced endocrine resistance, gene expression profiling was performed to determine the transcripts that are differentially expressed post-tamoxifen therapy under conditions of AKT overexpression. Consistent with the biologic outcome, many of these transcripts function in cell proliferation and cell motility networks and were quantitatively validated in a larger panel of breast cancer cells. Moreover, ribonucleotide reductase M2 (RRM2) was revealed as a key contributor to AKT-induced tamoxifen resistance. Inhibition of RRM2 by RNA interference (RNAi)-mediated approaches significantly reversed the tamoxifen-resistant cell growth, inhibited cell motility, and activated DNA damage and proapoptotic pathways. In addition, treatment of tamoxifen-resistant breast cancer cells with the small molecule RRM inhibitor didox significantly reduced in vitro and in vivo growth. Thus, AKT-expressing breast cancer cells upregulate RRM2 expression, leading to increased DNA repair and protection from tamoxifen-induced apoptosis.
Implications:
These findings identify RRM2 as an AKT-regulated gene, which plays a role in tamoxifen resistance and may prove to be a novel target for effective diagnostic and preventative strategies.
Insights
Overexpression of AKT in breast cancer promotes tamoxifen resistance by upregulating ribonucleotide reductase M2 (RRM2). Inhibiting RRM2 reverses resistance, offering a new therapeutic target for breast cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Acquired tamoxifen resistance is common in hormone-responsive breast cancers, often linked to the PI3K/AKT pathway.
- Elevated AKT activity in breast cancer cells drives tamoxifen resistance, promoting proliferation and motility.
Purpose of the Study:
- To investigate the molecular mechanisms underlying AKT-induced tamoxifen resistance.
- To identify key genes and pathways involved in AKT-mediated endocrine resistance.
Main Methods:
- Gene expression profiling of breast cancer cells with AKT overexpression after tamoxifen treatment.
- Quantitative validation of differentially expressed transcripts in a larger cell panel.
- RNA interference (RNAi) to inhibit ribonucleotide reductase M2 (RRM2) expression.
- In vitro and in vivo studies using the RRM2 inhibitor didox.
Main Results:
- AKT overexpression led to tamoxifen resistance, characterized by increased cell proliferation and motility.
- Ribonucleotide reductase M2 (RRM2) was identified as a crucial mediator of AKT-induced tamoxifen resistance.
- RRM2 inhibition via RNAi or didox treatment reversed tamoxifen resistance, reduced cell growth and motility, and induced DNA damage and apoptosis.
Conclusions:
- RRM2 is an AKT-regulated gene that significantly contributes to tamoxifen resistance in breast cancer.
- Targeting RRM2 presents a potential novel therapeutic strategy for overcoming endocrine resistance in breast cancer.
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