Targeting multidrug resistance-associated protein 1 (MRP1)-expressing cancers: Beyond pharmacological inhibition
Kimberley M Hanssen1, Michelle Haber1, Jamie I Fletcher1
1Children's Cancer Institute Australia, Lowy Cancer Research Centre, UNSW Sydney, Sydney, NSW, Australia; School of Women's and Children's Health, UNSW Sydney, Sydney, NSW, Australia.
Abstract:
Resistance to chemotherapy remains one of the most significant obstacles to successful cancer treatment. While inhibiting drug efflux mediated by ATP-binding cassette (ABC) transporters is a seemingly attractive and logical approach to combat multidrug resistance (MDR), small molecule inhibition of ABC transporters has so far failed to confer clinical benefit, despite considerable efforts by medicinal chemists, biologists, and clinicians. The long-sought treatment to eradicate cancers displaying ABC transporter overexpression may therefore lie within alternative targeting strategies. When aberrantly expressed, the ABC transporter multidrug resistance-associated protein 1 (MRP1, ABCC1) confers MDR, but can also shift cellular redox balance, leaving the cell vulnerable to select agents. Here, we explore the physiological roles of MRP1, the rational for targeting this transporter in cancer, the development of small molecule MRP1 inhibitors, and the most recent developments in alternative therapeutic approaches for targeting cancers with MRP1 overexpression. We discuss approaches that extend beyond simple MRP1 inhibition by exploiting the collateral sensitivity to glutathione depletion and ferroptosis, the rationale for targeting the shared transcriptional regulators of both MRP1 and glutathione biosynthesis, advances in gene silencing, and new molecules that modulate transporter activity to the detriment of the cancer cell. These strategies illustrate promising new approaches to address multidrug resistant disease that extend beyond the simple reversal of MDR and offer exciting routes for further research.
Insights
Targeting the MRP1 transporter offers new strategies beyond simple inhibition to overcome chemotherapy resistance. Exploiting its role in redox balance and glutathione pathways presents promising avenues for treating multidrug-resistant cancers.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Chemotherapy resistance is a major challenge in cancer treatment.
- ATP-binding cassette (ABC) transporters, like MRP1 (ABCC1), contribute to multidrug resistance (MDR) by exporting drugs.
- Direct inhibition of ABC transporters has shown limited clinical success.
Purpose of the Study:
- To explore the physiological roles of MRP1 in cancer.
- To review the development of MRP1 inhibitors and alternative targeting strategies.
- To discuss novel approaches for overcoming MRP1-mediated drug resistance.
Main Methods:
- Review of existing literature on MRP1 function, inhibition, and targeting.
- Analysis of alternative therapeutic strategies beyond direct MRP1 inhibition.
- Discussion of exploiting MRP1's role in cellular redox balance and glutathione pathways.
Main Results:
- MRP1 overexpression confers MDR but also creates vulnerabilities.
- Alternative strategies include exploiting collateral sensitivity to glutathione depletion and ferroptosis.
- Targeting shared transcriptional regulators of MRP1 and glutathione biosynthesis shows promise.
Conclusions:
- Novel therapeutic strategies targeting MRP1 are emerging beyond simple inhibition.
- Exploiting MRP1's impact on cellular redox and metabolism offers new avenues for cancer treatment.
- These approaches provide exciting routes for research into overcoming multidrug-resistant cancers.
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