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Kinetic and selectivity differences between rodent, rabbit, and human organic cation transporters (OCT1)
M J Dresser1, A T Gray, K M Giacomini
1Department of Biopharmaceutical Sciences, University of California, San Francisco, California, USA.
Abstract:
Organic cation transporters play an important role in the absorption, distribution, and elimination of clinical agents, toxic substances, and endogenous compounds. In kidney preparations, significant differences in functional characteristics of organic cation transport between various species have been reported. However, the underlying molecular mechanisms responsible for these interspecies differences are not known. The goal of this study was to determine the kinetics and substrate selectivities of organic cation transporter (OCT1) homologs from mouse, rat, rabbit, and human that may contribute to interspecies differences in the renal and hepatic handling of organic cations. With a series of n-tetraalkylammonium (nTAA) compounds, a correlation between increasing alkyl chain length and affinity for the four OCT1 homologs was observed. However, the apparent affinity constants (K(i)) differed among the species homologs. For the mouse homolog mOCT1, apparent K(i) values ranged from 7 microM for tetrabutylammonium to 2000 microM for tetramethylammonium. In contrast, the human homolog hOCT1 exhibited weaker interactions with the nTAA compounds. Trans-stimulation studies and current measurements in voltage-clamped oocytes demonstrated that larger nTAA compounds were transported at greater rates in oocytes expressing hOCT1, whereas smaller nTAAs were transported at greater rates in oocytes expressing mOCT1 or rOCT1. The rabbit homolog rbOCT1 exhibited intermediate properties in its interactions with nTAAs compared with its rodent and human counterparts. This report demonstrates that the human OCT1 homolog has functional properties distinct from those of the rodent and rabbit OCT1 homologs. The study underscores potential difficulties in extrapolating data from preclinical studies in animal models to humans.
Insights
Organic cation transporter 1 (OCT1) homologs show distinct substrate preferences across species. Human OCT1 interacts differently with organic cations than mouse, rat, or rabbit OCT1, impacting drug and toxin processing.
Area of Science:
- Pharmacology
- Biochemistry
- Physiology
Background:
- Organic cation transporters are crucial for processing drugs, toxins, and endogenous compounds.
- Significant interspecies differences exist in organic cation transport, but molecular mechanisms remain unclear.
Purpose of the Study:
- To investigate the kinetics and substrate selectivities of organic cation transporter 1 (OCT1) homologs from mouse, rat, rabbit, and human.
- To elucidate the molecular basis for interspecies variations in renal and hepatic organic cation handling.
Main Methods:
- Utilized a series of n-tetraalkylammonium (nTAA) compounds to assess OCT1 homologs.
- Performed trans-stimulation studies and current measurements in voltage-clamped oocytes expressing different OCT1 homologs.
Main Results:
- All OCT1 homologs showed affinity for nTAA compounds, with affinity correlating to alkyl chain length.
- Apparent affinity constants (K(i)) varied significantly among species; human OCT1 (hOCT1) exhibited weaker interactions than mouse OCT1 (mOCT1).
- Transport rates differed: hOCT1 favored larger nTAAs, while mOCT1 and rat OCT1 (rOCT1) favored smaller nTAAs. Rabbit OCT1 (rbOCT1) showed intermediate properties.
Conclusions:
- Human OCT1 possesses distinct functional properties compared to rodent and rabbit OCT1 homologs.
- These findings highlight potential challenges in extrapolating preclinical animal data to human drug and toxin disposition.