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Functional characterization in Xenopus oocytes of Na(+) transport systems from durum wheat reveals diversity among two HKT1;4 transporters

Plant tolerance to salinity constraint involves complex and integrated functions including control of Na(+) uptake, translocation, and compartmentalization. Several members of the high-affinity K(+) transporter (HKT) family, which comprises plasma-membrane transporters permeable to K(+) and Na(+) or...

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Autores principales: Ben Amar, Siwar, Brini, Faiçal, Sentenac, Hervé, Masmoudi, Khaled, Véry, Anne-Aliénor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3883290/
https://www.ncbi.nlm.nih.gov/pubmed/24192995
http://dx.doi.org/10.1093/jxb/ert361
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author Ben Amar, Siwar
Brini, Faiçal
Sentenac, Hervé
Masmoudi, Khaled
Véry, Anne-Aliénor
author_facet Ben Amar, Siwar
Brini, Faiçal
Sentenac, Hervé
Masmoudi, Khaled
Véry, Anne-Aliénor
author_sort Ben Amar, Siwar
collection PubMed
description Plant tolerance to salinity constraint involves complex and integrated functions including control of Na(+) uptake, translocation, and compartmentalization. Several members of the high-affinity K(+) transporter (HKT) family, which comprises plasma-membrane transporters permeable to K(+) and Na(+) or to Na(+) only, have been shown to play major roles in plant Na(+) and K(+) homeostasis. Among them, HKT1;4 has been identified as corresponding to a quantitative trait locus (QTL) of salt tolerance in wheat but was not functionally characterized. Here, we isolated two HKT1;4-type cDNAs from a salt-tolerant durum wheat (Triticum turgidum L. subsp. durum) cultivar, Om Rabia3, and investigated the functional properties of the encoded transporters using a two-electrode voltage-clamp technique, after expression in Xenopus oocytes. Both transporters displayed high selectivity for Na(+), their permeability to other monovalent cations (K(+), Li(+), Cs(+), and Rb(+)) being ten times lower than that to Na(+). Both TdHKT1;4-1 and TdHKT1;4-2 transported Na(+) with low affinity, although the half-saturation of the conductance was observed at a Na(+) concentration four times lower in TdHKT1;4-1 than in TdHKT1;4-2. External K(+) did not inhibit Na(+) transport through these transporters. Quinine slightly inhibited TdHKT1;4-2 but not TdHKT1;4-1. Overall, these data identified TdHKT1;4 transporters as new Na(+)-selective transporters within the HKT family, displaying their own functional features. Furthermore, they showed that important differences in affinity exist among durum wheat HKT1;4 transporters. This suggests that the salt tolerance QTL involving HKT1;4 may be at least in part explained by functional variability among wheat HKT1;4-type transporters.
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spelling pubmed-38832902014-01-07 Functional characterization in Xenopus oocytes of Na(+) transport systems from durum wheat reveals diversity among two HKT1;4 transporters Ben Amar, Siwar Brini, Faiçal Sentenac, Hervé Masmoudi, Khaled Véry, Anne-Aliénor J Exp Bot Research Paper Plant tolerance to salinity constraint involves complex and integrated functions including control of Na(+) uptake, translocation, and compartmentalization. Several members of the high-affinity K(+) transporter (HKT) family, which comprises plasma-membrane transporters permeable to K(+) and Na(+) or to Na(+) only, have been shown to play major roles in plant Na(+) and K(+) homeostasis. Among them, HKT1;4 has been identified as corresponding to a quantitative trait locus (QTL) of salt tolerance in wheat but was not functionally characterized. Here, we isolated two HKT1;4-type cDNAs from a salt-tolerant durum wheat (Triticum turgidum L. subsp. durum) cultivar, Om Rabia3, and investigated the functional properties of the encoded transporters using a two-electrode voltage-clamp technique, after expression in Xenopus oocytes. Both transporters displayed high selectivity for Na(+), their permeability to other monovalent cations (K(+), Li(+), Cs(+), and Rb(+)) being ten times lower than that to Na(+). Both TdHKT1;4-1 and TdHKT1;4-2 transported Na(+) with low affinity, although the half-saturation of the conductance was observed at a Na(+) concentration four times lower in TdHKT1;4-1 than in TdHKT1;4-2. External K(+) did not inhibit Na(+) transport through these transporters. Quinine slightly inhibited TdHKT1;4-2 but not TdHKT1;4-1. Overall, these data identified TdHKT1;4 transporters as new Na(+)-selective transporters within the HKT family, displaying their own functional features. Furthermore, they showed that important differences in affinity exist among durum wheat HKT1;4 transporters. This suggests that the salt tolerance QTL involving HKT1;4 may be at least in part explained by functional variability among wheat HKT1;4-type transporters. Oxford University Press 2014-01 2013-11-05 /pmc/articles/PMC3883290/ /pubmed/24192995 http://dx.doi.org/10.1093/jxb/ert361 Text en © The Author 2013. Published by Oxford University Press on behalf of the Society for Experimental Biology. http://creativecommons.org/licenses/by/3.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Paper
Ben Amar, Siwar
Brini, Faiçal
Sentenac, Hervé
Masmoudi, Khaled
Véry, Anne-Aliénor
Functional characterization in Xenopus oocytes of Na(+) transport systems from durum wheat reveals diversity among two HKT1;4 transporters
title Functional characterization in Xenopus oocytes of Na(+) transport systems from durum wheat reveals diversity among two HKT1;4 transporters
title_full Functional characterization in Xenopus oocytes of Na(+) transport systems from durum wheat reveals diversity among two HKT1;4 transporters
title_fullStr Functional characterization in Xenopus oocytes of Na(+) transport systems from durum wheat reveals diversity among two HKT1;4 transporters
title_full_unstemmed Functional characterization in Xenopus oocytes of Na(+) transport systems from durum wheat reveals diversity among two HKT1;4 transporters
title_short Functional characterization in Xenopus oocytes of Na(+) transport systems from durum wheat reveals diversity among two HKT1;4 transporters
title_sort functional characterization in xenopus oocytes of na(+) transport systems from durum wheat reveals diversity among two hkt1;4 transporters
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3883290/
https://www.ncbi.nlm.nih.gov/pubmed/24192995
http://dx.doi.org/10.1093/jxb/ert361
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