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Peptide transporter isoforms are discriminated by the fluorophore‐conjugated dipeptides β‐Ala‐ and d‐Ala‐Lys‐N‐7‐amino‐4‐methylcoumarin‐3‐acetic acid

Peptide transporters of the SLC15 family are classified by structure and function into PEPT1 (low‐affinity/high‐capacity) and PEPT2 (high‐affinity/low‐capacity) isoforms. Despite the differences in kinetics, both transporter isoforms are reckoned to transport essentially all possible di‐ and tripept...

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Autores principales: Kottra, Gabor, Spanier, Britta, Verri, Tiziano, Daniel, Hannelore
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Wiley Periodicals, Inc. 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3970736/
https://www.ncbi.nlm.nih.gov/pubmed/24744852
http://dx.doi.org/10.1002/phy2.165
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author Kottra, Gabor
Spanier, Britta
Verri, Tiziano
Daniel, Hannelore
author_facet Kottra, Gabor
Spanier, Britta
Verri, Tiziano
Daniel, Hannelore
author_sort Kottra, Gabor
collection PubMed
description Peptide transporters of the SLC15 family are classified by structure and function into PEPT1 (low‐affinity/high‐capacity) and PEPT2 (high‐affinity/low‐capacity) isoforms. Despite the differences in kinetics, both transporter isoforms are reckoned to transport essentially all possible di‐ and tripeptides. We here report that the fluorophore‐conjugated dipeptide derivatives β‐Ala‐Lys‐N‐7‐amino‐4‐methylcoumarin‐3‐acetic acid (β‐AK‐AMCA) and d‐Ala‐Lys‐N‐7‐amino‐4‐methylcoumarin‐3‐acetic acid (d‐AK‐AMCA) are transported by distinct PEPT isoforms in a species‐specific manner. Transport of the fluorophore peptides was studied (1) in vitro after heterologous expression in Xenopus oocytes of PEPT1 and PEPT2 isoforms from different vertebrate species and of PEPT1 and PEPT2 transporters from Caenorhabditis elegans by using electrophysiological and fluorescence methods and (2) in vivo in C. elegans by using fluorescence methods. Our results indicate that both substrates are transported by the vertebrate “renal‐type” and the C. elegans “intestinal‐type” peptide transporter only. A systematic analysis among species finds four predicted amino acid residues along the sequence that may account for the substrate uptake differences observed between the vertebrate PEPT1/nematode PEPT2 and the vertebrate PEPT2/nematode PEPT1 subtype. This selectivity on basis of isoforms and species may be helpful in better defining the structure–function determinants of the proteins of the SLC15 family.
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spelling pubmed-39707362014-03-31 Peptide transporter isoforms are discriminated by the fluorophore‐conjugated dipeptides β‐Ala‐ and d‐Ala‐Lys‐N‐7‐amino‐4‐methylcoumarin‐3‐acetic acid Kottra, Gabor Spanier, Britta Verri, Tiziano Daniel, Hannelore Physiol Rep Original Research Peptide transporters of the SLC15 family are classified by structure and function into PEPT1 (low‐affinity/high‐capacity) and PEPT2 (high‐affinity/low‐capacity) isoforms. Despite the differences in kinetics, both transporter isoforms are reckoned to transport essentially all possible di‐ and tripeptides. We here report that the fluorophore‐conjugated dipeptide derivatives β‐Ala‐Lys‐N‐7‐amino‐4‐methylcoumarin‐3‐acetic acid (β‐AK‐AMCA) and d‐Ala‐Lys‐N‐7‐amino‐4‐methylcoumarin‐3‐acetic acid (d‐AK‐AMCA) are transported by distinct PEPT isoforms in a species‐specific manner. Transport of the fluorophore peptides was studied (1) in vitro after heterologous expression in Xenopus oocytes of PEPT1 and PEPT2 isoforms from different vertebrate species and of PEPT1 and PEPT2 transporters from Caenorhabditis elegans by using electrophysiological and fluorescence methods and (2) in vivo in C. elegans by using fluorescence methods. Our results indicate that both substrates are transported by the vertebrate “renal‐type” and the C. elegans “intestinal‐type” peptide transporter only. A systematic analysis among species finds four predicted amino acid residues along the sequence that may account for the substrate uptake differences observed between the vertebrate PEPT1/nematode PEPT2 and the vertebrate PEPT2/nematode PEPT1 subtype. This selectivity on basis of isoforms and species may be helpful in better defining the structure–function determinants of the proteins of the SLC15 family. Wiley Periodicals, Inc. 2013-12-08 /pmc/articles/PMC3970736/ /pubmed/24744852 http://dx.doi.org/10.1002/phy2.165 Text en © 2013 The Authors. Physiological Reports published by Wiley Periodicals, Inc. on behalf of the American Physiological Society and The Physiological Society. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/3.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Research
Kottra, Gabor
Spanier, Britta
Verri, Tiziano
Daniel, Hannelore
Peptide transporter isoforms are discriminated by the fluorophore‐conjugated dipeptides β‐Ala‐ and d‐Ala‐Lys‐N‐7‐amino‐4‐methylcoumarin‐3‐acetic acid
title Peptide transporter isoforms are discriminated by the fluorophore‐conjugated dipeptides β‐Ala‐ and d‐Ala‐Lys‐N‐7‐amino‐4‐methylcoumarin‐3‐acetic acid
title_full Peptide transporter isoforms are discriminated by the fluorophore‐conjugated dipeptides β‐Ala‐ and d‐Ala‐Lys‐N‐7‐amino‐4‐methylcoumarin‐3‐acetic acid
title_fullStr Peptide transporter isoforms are discriminated by the fluorophore‐conjugated dipeptides β‐Ala‐ and d‐Ala‐Lys‐N‐7‐amino‐4‐methylcoumarin‐3‐acetic acid
title_full_unstemmed Peptide transporter isoforms are discriminated by the fluorophore‐conjugated dipeptides β‐Ala‐ and d‐Ala‐Lys‐N‐7‐amino‐4‐methylcoumarin‐3‐acetic acid
title_short Peptide transporter isoforms are discriminated by the fluorophore‐conjugated dipeptides β‐Ala‐ and d‐Ala‐Lys‐N‐7‐amino‐4‐methylcoumarin‐3‐acetic acid
title_sort peptide transporter isoforms are discriminated by the fluorophore‐conjugated dipeptides β‐ala‐ and d‐ala‐lys‐n‐7‐amino‐4‐methylcoumarin‐3‐acetic acid
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3970736/
https://www.ncbi.nlm.nih.gov/pubmed/24744852
http://dx.doi.org/10.1002/phy2.165
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