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1.
Nat Commun ; 14(1): 6374, 2023 10 11.
Article in English | MEDLINE | ID: mdl-37821493

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.


Subject(s)
Organic Cation Transport Proteins , Organic Cation Transporter 1 , Humans , Organic Cation Transporter 1/genetics , Organic Cation Transporter 1/chemistry , Organic Cation Transporter 1/metabolism , Organic Cation Transport Proteins/chemistry , Biological Transport , Organic Cation Transporter 2/metabolism
2.
Commun Biol ; 6(1): 26, 2023 01 11.
Article in English | MEDLINE | ID: mdl-36631659

ABSTRACT

F1Fo ATP synthase functions as a biological generator and makes a major contribution to cellular energy production. Proton flow generates rotation in the Fo motor that is transferred to the F1 motor to catalyze ATP production, with flexible F1/Fo coupling required for efficient catalysis. F1Fo ATP synthase can also operate in reverse, hydrolyzing ATP and pumping protons, and in bacteria this function can be regulated by an inhibitory ε subunit. Here we present cryo-EM data showing E. coli F1Fo ATP synthase in different rotational and inhibited sub-states, observed following incubation with 10 mM MgATP. Our structures demonstrate how structural transitions within the inhibitory ε subunit induce torsional movement in the central stalk, thereby enabling its rotation within the Fο motor. This highlights the importance of the central rotor for flexible coupling of the F1 and Fo motors and provides further insight into the regulatory mechanism mediated by subunit ε.


Subject(s)
Adenosine Triphosphate , Escherichia coli
3.
Nat Commun ; 11(1): 2615, 2020 05 26.
Article in English | MEDLINE | ID: mdl-32457314

ABSTRACT

F1Fo ATP synthase functions as a biological rotary generator that makes a major contribution to cellular energy production. It comprises two molecular motors coupled together by a central and a peripheral stalk. Proton flow through the Fo motor generates rotation of the central stalk, inducing conformational changes in the F1 motor that catalyzes ATP production. Here we present nine cryo-EM structures of E. coli ATP synthase to 3.1-3.4 Å resolution, in four discrete rotational sub-states, which provide a comprehensive structural model for this widely studied bacterial molecular machine. We observe torsional flexing of the entire complex and a rotational sub-step of Fo associated with long-range conformational changes that indicates how this flexibility accommodates the mismatch between the 3- and 10-fold symmetries of the F1 and Fo motors. We also identify density likely corresponding to lipid molecules that may contribute to the rotor/stator interaction within the Fo motor.


Subject(s)
Escherichia coli Proteins/chemistry , Proton-Translocating ATPases/chemistry , Adenosine Diphosphate/metabolism , Cryoelectron Microscopy , Escherichia coli Proteins/metabolism , Lipids/chemistry , Models, Molecular , Protein Conformation , Protein Subunits/chemistry , Protein Subunits/metabolism , Proton-Translocating ATPases/metabolism , Rotation , Structure-Activity Relationship
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