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Structural basis of promiscuous substrate transport by Organic Cation Transporter 1.


ABSTRACT: Organic Cation Transporter 1 (OCT1) plays a crucial role in hepatic metabolism by mediating the uptake of a range of metabolites and drugs. Genetic variations can alter the efficacy and safety of compounds transported by OCT1, such as those used for cardiovascular, oncological, and psychological indications. Despite its importance in drug pharmacokinetics, the substrate selectivity and underlying structural mechanisms of OCT1 remain poorly understood. Here, we present cryo-EM structures of full-length human OCT1 in the inward-open conformation, both ligand-free and drug-bound, indicating the basis for its broad substrate recognition. Comparison of our structures with those of outward-open OCTs provides molecular insight into the alternating access mechanism of OCTs. We observe that hydrophobic gates stabilize the inward-facing conformation, whereas charge neutralization in the binding pocket facilitates the release of cationic substrates. These findings provide a framework for understanding the structural basis of the promiscuity of drug binding and substrate translocation in OCT1.

SUBMITTER: Zeng YC 

PROVIDER: S-EPMC10567722 | biostudies-literature | 2023 Oct

REPOSITORIES: biostudies-literature

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Structural basis of promiscuous substrate transport by Organic Cation Transporter 1.

Zeng Yi C YC   Sobti Meghna M   Quinn Ada A   Smith Nicola J NJ   Brown Simon H J SHJ   Vandenberg Jamie I JI   Ryan Renae M RM   O'Mara Megan L ML   Stewart Alastair G AG  

Nature communications 20231011 1


Organic Cation Transporter 1 (OCT1) plays a crucial role in hepatic metabolism by mediating the uptake of a range of metabolites and drugs. Genetic variations can alter the efficacy and safety of compounds transported by OCT1, such as those used for cardiovascular, oncological, and psychological indications. Despite its importance in drug pharmacokinetics, the substrate selectivity and underlying structural mechanisms of OCT1 remain poorly understood. Here, we present cryo-EM structures of full-  ...[more]

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