OSI-930 analogues as novel reversal agents for ABCG2-mediated multidrug resistance

Ye-Hong Kuang1, Jay P Patel, Kamlesh Sodani

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

Insights

New compounds VKJP1 and VKJP3 reverse multidrug resistance mediated by the ABCG2 transporter. These selective inhibitors interact directly with ABCG2, offering potential for treating ABCG2-overexpressing tumors.

Area of Science:

  • Pharmacology
  • Molecular Biology
  • Medicinal Chemistry

Background:

  • Multidrug resistance (MDR) in cancer is a major challenge, often mediated by efflux transporters like ABCG2.
  • OSI-930 is a dual c-Kit and KDR tyrosine kinase inhibitor previously studied in advanced solid tumors.

Purpose of the Study:

  • To design and synthesize novel analogues of OSI-930.
  • To identify compounds that can reverse ABCG2 transporter-mediated multidrug resistance.
  • To investigate the mechanism of action of effective compounds on ABCG2 function.

Main Methods:

  • Synthesis of fifteen pyridyl and phenyl analogues of OSI-930.
  • Screening of analogues for reversal of ABCG2-mediated MDR using various cancer cell lines and substrates.
  • Western blotting to assess ABCG2 protein expression levels.
  • Intracellular accumulation studies using radiolabeled substrates.
  • ATPase activity assays and photoaffinity labeling to probe transporter interaction.

Main Results:

  • VKJP1 and VKJP3, nitropyridyl and ortho-nitrophenyl analogues, effectively reversed ABCG2-mediated MDR.
  • These compounds sensitized cells to ABCG2 substrates (mitoxantrone, SN-38, doxorubicin) but not to non-ABCG2 substrates (cisplatin).
  • VKJP1 and VKJP3 selectively inhibited ABCG2 function without altering protein expression, by directly interacting with the substrate binding site.

Conclusions:

  • VKJP1 and VKJP3 represent a novel class of selective ABCG2 inhibitors.
  • These compounds show potential for overcoming ABCG2-mediated multidrug resistance in tumors.
  • Direct inhibition of ABCG2 function by VKJP1 and VKJP3 offers a new therapeutic strategy.

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