Interaction of ivermectin with multidrug resistance proteins (MRP1, 2 and 3)

Anne Lespine1, Jacques Dupuy, Stéphane Orlowski

  • 1Laboratoire de Pharmacologie-Toxicologie INRA, Toulouse, France. lespine@toulouse.inra.fr

Insights

Ivermectin, an antiparasitic drug, interacts with multidrug resistance-associated proteins (MRPs), not just P-glycoprotein (Pgp). This finding impacts understanding ivermectin transport and optimizing treatments.

Area of Science:

  • Pharmacology
  • Cell Biology
  • Biochemistry

Background:

  • Ivermectin is a macrocyclic lactone (ML) antiparasitic drug.
  • Ivermectin is known to interact with P-glycoprotein (Pgp), an ABC multidrug transporter.

Purpose of the Study:

  • To investigate the interactions of ivermectin with multidrug resistance-associated proteins (MRPs).
  • To determine if MRPs play a role in ivermectin transport and cellular disposition.

Main Methods:

  • Cellular assays measuring substrate transport (calcein, BCECF) in A549 and HL60-MRP1 cells.
  • Subcellular assays assessing transporter ATPase activity in Sf9 cells overexpressing Pgp, MRP1, MRP2, or MRP3.
  • Cellular tracking of BODIPY-ivermectin in cells overexpressing Pgp or MRP1.

Main Results:

  • Ivermectin inhibited calcein and BCECF retention in A549 cells and calcein efflux in HL60-MRP1 cells.
  • Ivermectin inhibited ATPase activity of Pgp, MRP1, MRP2, and MRP3.
  • Ivermectin demonstrated affinity for MRPs, particularly MRP1, and was transported by MRP1.

Conclusions:

  • Ivermectin specifically interacts with and is transported by MRP proteins, including MRP1.
  • MRPs, in addition to Pgp, modulate ivermectin's cellular transport and disposition.
  • Understanding MRP involvement may optimize clinical efficacy of ML-based antiparasitic treatments and suggests potential use of ivermectin as a multidrug resistance-reversing agent.

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