The large extracellular loop of organic cation transporter 1 influences substrate affinity and is pivotal for

Thorsten Keller1, Brigitte Egenberger, Valentin Gorboulev

  • 1Institute of Anatomy and Cell Biology, University of Würzburg, Koellikerstrasse 6, 97070 Würzburg, Germany.

Insights

The large extracellular loops of organic cation transporters (OCTs) mediate homo-oligomerization but do not affect substrate transport function. This finding clarifies how OCTs function and how mutations impact drug efficacy.

Area of Science:

  • Membrane Transport Biochemistry
  • Pharmacology
  • Molecular Biology

Background:

  • Organic anion transporters (OATs) and organic cation transporters (OCTs) from the SLC22 family are crucial for drug disposition.
  • Genetic variations in these transporters can alter drug response.
  • Previous hypotheses on OCT function assumed monomeric forms, but oligomerization has been observed.

Purpose of the Study:

  • To investigate the role of large extracellular loops (EL) in the homo-oligomerization of rat Oct1 (rOct1) and rat Oat1 (rOat1).
  • To determine the impact of oligomerization on the transport function and substrate affinity of rOct1.

Main Methods:

  • Mutagenesis of cysteine residues in the EL of rOct1.
  • Construction of rOct1 chimeras with the EL of rOat1.
  • Disulfide bond disruption using dithiothreitol.
  • Measurement of transporter plasma membrane abundance.
  • Determination of kinetic parameters (K(m)) for substrates MPP(+) and TEA(+).

Main Results:

  • The large extracellular loops of rOct1 and rOat1 mediate homo-oligomerization.
  • Disulfide bond disruption or EL modification prevented rOct1 oligomerization and altered plasma membrane expression.
  • Oligomerization did not significantly change substrate affinity (K(m)) for MPP(+) and TEA(+), indicating independent monomer function.

Conclusions:

  • Homo-oligomerization of rOct1 and rOat1 is mediated by their large extracellular loops.
  • Transporter oligomerization does not appear to influence the intrinsic transport function or substrate binding affinity.
  • These findings provide insights into OCTs' mechanism of action and the potential consequences of genetic mutations.

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