The molecular mechanism underlying the induction of hepatic MRP3 expression and function by omeprazole

Yu-Qin Pan1, Qiong-Yu Mi, Bang-Shun He

  • 1General Clinical Research Center, Nanjing First Hospital, Nanjing Medical University, Nanjing, 210006, China.

Insights

Omeprazole increases multidrug resistance-associated protein 3 (MRP3) mRNA and protein expression via transcriptional up-regulation. This enhances MRP3 efflux transport activity, suggesting omeprazole may affect other MRP transporters.

Area of Science:

  • Pharmacology
  • Molecular Biology
  • Drug Metabolism

Background:

  • Previous studies noted increased multidrug resistance-associated protein 3 (MRP3) protein in omeprazole-treated patients.
  • Mechanisms underlying omeprazole-induced MRP3 expression remain unclear.

Purpose of the Study:

  • To investigate the transcriptional regulation of MRP3 by omeprazole.
  • To assess the impact of omeprazole on MRP3 mRNA and protein expression.
  • To determine if omeprazole-induced MRP3 exhibits enhanced efflux transport activity.

Main Methods:

  • HepG2 cells were treated with omeprazole, MRP3 siRNA, or actinomycin D (Act-D).
  • MRP3 mRNA and protein levels were quantified.
  • MRP3 efflux transport was measured using a 5-carboxyfluorescein assay.
  • MRP3 mRNA decay rates were analyzed in the presence of Act-D.

Main Results:

  • Omeprazole dose- and time-dependently increased MRP3 mRNA and protein expression.
  • MRP3 induction was significantly reduced by MRP3 siRNA and Act-D.
  • Act-D experiments indicated transcriptional up-regulation of MRP3 mRNA by omeprazole.
  • Omeprazole enhanced MRP3 efflux transport activity, which was inhibited by MRP3 siRNA and indomethacin.

Conclusions:

  • Omeprazole induces MRP3 expression and enhances its efflux transport activity through transcriptional up-regulation.
  • Omeprazole may also induce other members of the MRP transporter family.

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