BMS-599626, a Highly Selective Pan-HER Kinase Inhibitor, Antagonizes ABCG2-Mediated Drug Resistance

Yunali V Ashar1, Jingchun Zhou2, Pranav Gupta1

  • 1Department of Pharmaceutical Sciences, College of Pharmacy and Health Sciences, St. John's University, Queens, NY 11439, USA.

Cancers
|September 9, 2020
PubMed

Insights

BMS-599626 effectively inhibits the ABCG2 transporter at nanomolar concentrations. This compound acts as a chemosensitizer, increasing chemotherapy drug accumulation in resistant cells and offering potential for overcoming multidrug resistance in clinical settings.

Area of Science:

  • Biochemistry
  • Pharmacology
  • Oncology

Background:

  • Multidrug resistance (MDR) due to ABC transporter overexpression is a major cause of chemotherapy failure.
  • Existing MDR inhibitors often face challenges with potency and toxicity.
  • ABCG2 is a key transporter implicated in MDR.

Purpose of the Study:

  • To investigate BMS-599626 as a potential inhibitor of ABCG2 transporter function.
  • To evaluate BMS-599626 as a chemosensitizer in ABCG2-overexpressing cancer cells.
  • To explore the mechanism of BMS-599626 interaction with ABCG2.

Main Methods:

  • Cytotoxicity assays to assess chemosensitization.
  • Radioactive drug accumulation experiments.
  • Western blotting and cell surface localization studies.
  • ATPase activity assays.
  • In-silico molecular docking.

Main Results:

  • BMS-599626 potently inhibits ABCG2 efflux function at 300 nM.
  • Non-cytotoxic concentrations of BMS-599626 sensitize ABCG2-overexpressing cells to topotecan and mitoxantrone.
  • BMS-599626 increases intracellular accumulation of ABCG2 substrates.
  • Inhibition of ABCG2 ATPase activity and interaction with the substrate-binding site confirmed.
  • No change in ABCG2 protein expression or cell surface localization was observed.

Conclusions:

  • BMS-599626 is a potent ABCG2 inhibitor and effective chemosensitizer.
  • Co-administration with BMS-599626 may overcome ABCG2-mediated multidrug resistance.
  • This strategy holds promise for clinical application in cancer therapy.

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