Stimulatory effect on the transport mediated by organic anion transporting polypeptide 2B1

Jiro Ogura1, Hiroaki Yamaguchi1, Nariyasu Mano1

  • 1Tohoku University Hospital, Department of Pharmaceutical Sciences, Miyagi 980-8574, Japan.

Insights

Drug-drug interactions (DDIs) can cause adverse events. This review examines how compounds acutely stimulate organic anion-transporting polypeptide 2B1 (OATP2B1) transporters, influencing drug absorption and efficacy.

Area of Science:

  • Pharmacology
  • Drug Metabolism
  • Molecular Biology

Background:

  • Drug-drug interactions (DDIs) are a significant cause of adverse drug events.
  • Organic anion-transporting polypeptide 2B1 (OATP2B1) is a key intestinal transporter for many drugs.
  • The intestine's high drug exposure makes it a critical site for DDIs.

Purpose of the Study:

  • To review the acute stimulatory effects on OATP2B1-mediated transport.
  • To discuss the mechanisms underlying these acute stimulatory effects.
  • To highlight the importance of understanding OATP2B1 interactions for preventing DDIs.

Main Methods:

  • Literature review of studies on OATP2B1 transport and interactions.
  • Analysis of mechanisms for acute stimulatory effects.
  • Categorization of stimulatory effects into substrate-dependent and -independent.

Main Results:

  • OATP2B1 is acutely stimulated by various compounds, including drugs and food components.
  • Two types of acute stimulatory effects exist: substrate-independent and substrate-dependent.
  • Substrate-independent effects involve OATP2B1 translocation to the plasma membrane.
  • Substrate-dependent effects result from direct binding to OATP2B1 sites.

Conclusions:

  • Acute stimulation of OATP2B1 can significantly alter drug absorption and efficacy.
  • Understanding these stimulatory mechanisms is crucial for managing DDIs.
  • Further research into OATP2B1 modulation can help prevent adverse drug events.

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