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Updated: May 29, 2026

Transmembrane Domain Oligomerization Propensity determined by ToxR Assay
Published on: May 26, 2011
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.
Abstract:
Polyspecific organic anion transporters (OATs) and organic cation transporters (OCTs) of the SLC22 transporter family play a pivotal role in absorption, distribution, and excretion of drugs. Polymorphisms in these transporters influence therapeutic effects. On the basis of functional characterizations, homology modeling, and mutagenesis, hypotheses for how OCTs bind and translocate structurally different cations were raised, assuming functionally competent monomers. However, homo-oligomerization has been described for OATs and OCTs. In the present study, evidence is provided that the large extracellular loops (EL) of rat Oct1 (rOct1) and rat Oat1 (rOat1) mediate homo- but not hetero-oligomerization. Replacement of the cysteine residues in the EL of rOct1 by serine residues (rOct1(6ΔC-l)) or breaking disulfide bonds with dithiothreitol prevented oligomerization. rOct1 chimera containing the EL of rOat1 (rOct1(rOat1-l)) showed oligomerization but reduced transporter amount in the plasma membrane. For rOct1(6ΔC-l) and rOct1(rOat1-l), similar K(m) values for 1-methyl-4-phenylpyridinium(+) (MPP(+)) and tetraethylammonium(+) (TEA(+)) were obtained that were higher compared with rOct1 wild type. The increased K(m) of rOct1(rOat1-l) indicates an allosteric effect of EL on the cation binding region. The similar substrate affinity of the oligomerizing and non-oligomerizing loop mutants suggests that oligomerization does not influence transport function. Independent transport function of rOct1 monomers was also demonstrated by showing that K(m) values for MPP(+) and TEA(+) were not changed after treatment with dithiothreitol and that a tandem protein with two rOct1 monomers showed about 50% activity with unchanged K(m) values for MPP(+) and TEA(+) when one monomer was blocked. The data help to understand how OCTs work and how mutations in patients may affect their functions.
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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