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Acquired Drug Resistance Enhances Imidazoquinoline Efflux by P-Glycoprotein
Anunay J Pulukuri1, Anthony J Burt1,2, Larissa K Opp1
1Department of Chemistry, Washington State University, Pullman, WA 99164, USA.
Abstract:
Multidrug-Resistant (MDR) cancers attenuate chemotherapeutic efficacy through drug efflux, a process that transports drugs from within a cell to the extracellular space via ABC (ATP-Binding Cassette) transporters, including P-glycoprotein 1 (P-gp or ABCB1/MDR1). Conversely, Toll-Like Receptor (TLR) agonist immunotherapies modulate activity of tumor-infiltrating immune cells in local proximity to cancer cells and could, therefore, benefit from the enhanced drug efflux in MDR cancers. However, the effect of acquired drug resistance on TLR agonist efflux is largely unknown. We begin to address this by investigating P-gp mediated efflux of TLR 7/8 agonists. First, we used functionalized liposomes to determine that imidazoquinoline TLR agonists Imiquimod, Resiquimod, and Gardiquimod are substrates for P-gp. Interestingly, the least potent imidazoquinoline (Imiquimod) was the best P-gp substrate. Next, we compared imidazoquinoline efflux in MDR cancer cell lines with enhanced P-gp expression relative to parent cancer cell lines. Using P-gp competitive substrates and inhibitors, we observed that imidazoquinoline efflux occurs through P-gp and, for Imiquimod, is enhanced as a consequence of acquired drug resistance. This suggests that enhancing efflux susceptibility could be an important consideration in the rational design of next generation immunotherapies that modulate activity of tumor-infiltrating immune cells.
Insights
Multidrug-resistant cancers enhance efflux of Toll-Like Receptor (TLR) agonists via P-glycoprotein 1 (P-gp). This efflux, particularly for Imiquimod, increases with acquired drug resistance, impacting immunotherapy design.
Area of Science:
- Cancer Biology
- Immunology
- Pharmacology
Background:
- Multidrug resistance (MDR) in cancer limits chemotherapy efficacy via drug efflux pumps like P-glycoprotein 1 (P-gp).
- Toll-Like Receptor (TLR) agonists are immunotherapies that activate immune cells near tumors.
- The impact of MDR on TLR agonist efflux remains largely unexplored.
Purpose of the Study:
- To investigate P-gp mediated efflux of TLR 7/8 agonists.
- To determine if acquired drug resistance affects TLR agonist efflux.
- To inform the design of next-generation immunotherapies.
Main Methods:
- Utilized functionalized liposomes to assess TLR agonist-P-gp interactions.
- Compared imidazoquinoline efflux in MDR versus parent cancer cell lines.
- Employed P-gp competitive substrates and inhibitors to confirm efflux mechanisms.
Main Results:
- Imidazoquinoline TLR agonists (Imiquimod, Resiquimod, Gardiquimod) are substrates for P-gp.
- Imiquimod, the least potent agonist, exhibited the highest P-gp substrate activity.
- Imidazoquinoline efflux via P-gp was enhanced in MDR cancer cells, particularly for Imiquimod, due to acquired resistance.
Conclusions:
- P-gp actively effluxes imidazoquinoline TLR agonists.
- Acquired drug resistance enhances P-gp mediated efflux of certain TLR agonists.
- Efflux susceptibility should be considered in designing novel immunotherapies targeting tumor-infiltrating immune cells.
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