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Reshaping the Binding Pocket of the Neurotransmitter:Solute Symporter (NSS) Family Transporter SLC6A14 (ATB(0,+)) Selectively Reduces Access for Cationic Amino Acids and Derivatives

SLC6A14 (ATB(0,+)) is unique among SLC proteins in its ability to transport 18 of the 20 proteinogenic (dipolar and cationic) amino acids and naturally occurring and synthetic analogues (including anti-viral prodrugs and nitric oxide synthase (NOS) inhibitors). SLC6A14 mediates amino acid uptake in...

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Autores principales: Anderson, Catriona M. H., Edwards, Noel, Watson, Andrew K., Althaus, Mike, Thwaites, David T.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9599917/
https://www.ncbi.nlm.nih.gov/pubmed/36291613
http://dx.doi.org/10.3390/biom12101404
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author Anderson, Catriona M. H.
Edwards, Noel
Watson, Andrew K.
Althaus, Mike
Thwaites, David T.
author_facet Anderson, Catriona M. H.
Edwards, Noel
Watson, Andrew K.
Althaus, Mike
Thwaites, David T.
author_sort Anderson, Catriona M. H.
collection PubMed
description SLC6A14 (ATB(0,+)) is unique among SLC proteins in its ability to transport 18 of the 20 proteinogenic (dipolar and cationic) amino acids and naturally occurring and synthetic analogues (including anti-viral prodrugs and nitric oxide synthase (NOS) inhibitors). SLC6A14 mediates amino acid uptake in multiple cell types where increased expression is associated with pathophysiological conditions including some cancers. Here, we investigated how a key position within the core LeuT-fold structure of SLC6A14 influences substrate specificity. Homology modelling and sequence analysis identified the transmembrane domain 3 residue V128 as equivalent to a position known to influence substrate specificity in distantly related SLC36 and SLC38 amino acid transporters. SLC6A14, with and without V128 mutations, was heterologously expressed and function determined by radiotracer solute uptake and electrophysiological measurement of transporter-associated current. Substituting the amino acid residue occupying the SLC6A14 128 position modified the binding pocket environment and selectively disrupted transport of cationic (but not dipolar) amino acids and related NOS inhibitors. By understanding the molecular basis of amino acid transporter substrate specificity we can improve knowledge of how this multi-functional transporter can be targeted and how the LeuT-fold facilitates such diversity in function among the SLC6 family and other SLC amino acid transporters.
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spelling pubmed-95999172022-10-27 Reshaping the Binding Pocket of the Neurotransmitter:Solute Symporter (NSS) Family Transporter SLC6A14 (ATB(0,+)) Selectively Reduces Access for Cationic Amino Acids and Derivatives Anderson, Catriona M. H. Edwards, Noel Watson, Andrew K. Althaus, Mike Thwaites, David T. Biomolecules Article SLC6A14 (ATB(0,+)) is unique among SLC proteins in its ability to transport 18 of the 20 proteinogenic (dipolar and cationic) amino acids and naturally occurring and synthetic analogues (including anti-viral prodrugs and nitric oxide synthase (NOS) inhibitors). SLC6A14 mediates amino acid uptake in multiple cell types where increased expression is associated with pathophysiological conditions including some cancers. Here, we investigated how a key position within the core LeuT-fold structure of SLC6A14 influences substrate specificity. Homology modelling and sequence analysis identified the transmembrane domain 3 residue V128 as equivalent to a position known to influence substrate specificity in distantly related SLC36 and SLC38 amino acid transporters. SLC6A14, with and without V128 mutations, was heterologously expressed and function determined by radiotracer solute uptake and electrophysiological measurement of transporter-associated current. Substituting the amino acid residue occupying the SLC6A14 128 position modified the binding pocket environment and selectively disrupted transport of cationic (but not dipolar) amino acids and related NOS inhibitors. By understanding the molecular basis of amino acid transporter substrate specificity we can improve knowledge of how this multi-functional transporter can be targeted and how the LeuT-fold facilitates such diversity in function among the SLC6 family and other SLC amino acid transporters. MDPI 2022-10-01 /pmc/articles/PMC9599917/ /pubmed/36291613 http://dx.doi.org/10.3390/biom12101404 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Anderson, Catriona M. H.
Edwards, Noel
Watson, Andrew K.
Althaus, Mike
Thwaites, David T.
Reshaping the Binding Pocket of the Neurotransmitter:Solute Symporter (NSS) Family Transporter SLC6A14 (ATB(0,+)) Selectively Reduces Access for Cationic Amino Acids and Derivatives
title Reshaping the Binding Pocket of the Neurotransmitter:Solute Symporter (NSS) Family Transporter SLC6A14 (ATB(0,+)) Selectively Reduces Access for Cationic Amino Acids and Derivatives
title_full Reshaping the Binding Pocket of the Neurotransmitter:Solute Symporter (NSS) Family Transporter SLC6A14 (ATB(0,+)) Selectively Reduces Access for Cationic Amino Acids and Derivatives
title_fullStr Reshaping the Binding Pocket of the Neurotransmitter:Solute Symporter (NSS) Family Transporter SLC6A14 (ATB(0,+)) Selectively Reduces Access for Cationic Amino Acids and Derivatives
title_full_unstemmed Reshaping the Binding Pocket of the Neurotransmitter:Solute Symporter (NSS) Family Transporter SLC6A14 (ATB(0,+)) Selectively Reduces Access for Cationic Amino Acids and Derivatives
title_short Reshaping the Binding Pocket of the Neurotransmitter:Solute Symporter (NSS) Family Transporter SLC6A14 (ATB(0,+)) Selectively Reduces Access for Cationic Amino Acids and Derivatives
title_sort reshaping the binding pocket of the neurotransmitter:solute symporter (nss) family transporter slc6a14 (atb(0,+)) selectively reduces access for cationic amino acids and derivatives
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9599917/
https://www.ncbi.nlm.nih.gov/pubmed/36291613
http://dx.doi.org/10.3390/biom12101404
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