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Interaction of crown ethers with the ABCG2 transporter and their implication for multidrug resistance reversal
Marija Mioč1, Ágnes Telbisz2, Katarina Radman3
1Division of Molecular Medicine, Ruđer Bošković Institute, Bijenička cesta 54, 10000, Zagreb, Croatia.
Abstract:
Overexpression of ABC transporters, such as ABCB1 and ABCG2, plays an important role in mediating multidrug resistance (MDR) in cancer. This feature is also attributed to a subpopulation of cancer stem cells (CSCs), having enhanced tumourigenic potential. ABCG2 is specifically associated with the CSC phenotype, making it a valuable target for eliminating aggressive and resistant cells. Several natural and synthetic ionophores have been discovered as CSC-selective drugs that may also have MDR-reversing ability, whereas their interaction with ABCG2 has not yet been explored. We previously reported the biological activities, including ABCB1 inhibition, of a group of adamantane-substituted diaza-18-crown-6 (DAC) compounds that possess ionophore capabilities. In this study, we investigated the mechanism of ABCG2-inhibitory activity of DAC compounds and the natural ionophores salinomycin, monensin and nigericin. We used a series of functional assays, including real-time microscopic analysis of ABCG2-mediated fluorescent substrate transport in cells, and docking studies to provide comparative aspects for the transporter-compound interactions and their role in restoring chemosensitivity. We found that natural ionophores did not inhibit ABCG2, suggesting that their CSC selectivity is likely mediated by other mechanisms. In contrast, DACs with amide linkage in the side arms demonstrated noteworthy ABCG2-inhibitory activity, with DAC-3Amide proving to be the most potent. This compound induced conformational changes of the transporter and likely binds to both Cavity 1 and the NBD-TMD interface. DAC-3Amide reversed ABCG2-mediated MDR in model cells, without affecting ABCG2 expression or localization. These results pave the way for the development of new crown ether compounds with improved ABCG2-inhibitory properties.
Insights
New crown ether compounds, called diaza-18-crown-6 (DACs), show promise in inhibiting ABCG2, a transporter linked to cancer stem cells and multidrug resistance (MDR). DAC-3Amide effectively reversed MDR without altering ABCG2 levels.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Overexpression of ABC transporters like ABCB1 and ABCG2 drives multidrug resistance (MDR) in cancer.
- Cancer stem cells (CSCs) possess enhanced tumorigenic potential and are often associated with ABCG2, making it a therapeutic target.
- Natural and synthetic ionophores are explored for CSC-selective drug development, but their interaction with ABCG2 remains unclear.
Purpose of the Study:
- To investigate the ABCG2 inhibitory mechanisms of diaza-18-crown-6 (DAC) compounds and natural ionophores.
- To determine if these compounds can reverse ABCG2-mediated multidrug resistance.
- To explore the potential of DAC compounds as novel therapeutic agents against aggressive and resistant cancer cells.
Main Methods:
- Functional assays including real-time microscopic analysis of ABCG2-mediated fluorescent substrate transport.
- Cell-based assays to assess MDR reversal and ABCG2 expression/localization.
- Molecular docking studies to elucidate transporter-compound interactions.
Main Results:
- Natural ionophores (salinomycin, monensin, nigericin) did not inhibit ABCG2.
- Diaza-18-crown-6 (DAC) compounds, particularly DAC-3Amide with an amide linkage, demonstrated significant ABCG2 inhibition.
- DAC-3Amide induced conformational changes in ABCG2, likely binding to Cavity 1 and the NBD-TMD interface, and reversed ABCG2-mediated MDR without affecting transporter expression.
Conclusions:
- The CSC-selective properties of natural ionophores are likely mediated by mechanisms other than ABCG2 inhibition.
- DAC compounds, especially DAC-3Amide, are potent inhibitors of ABCG2 and can restore chemosensitivity.
- This study highlights the potential for developing novel crown ether-based compounds targeting ABCG2 for overcoming MDR in cancer.
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