Cargando…

Constitutive Contribution by the Rice OsHKT1;4 Na(+) Transporter to Xylem Sap Desalinization and Low Na(+) Accumulation in Young Leaves Under Low as High External Na(+) Conditions

HKT Na(+) transporters correspond to major salt tolerance QTLs in different plant species and are targets of great interest for breeders. In rice, the HKT family is composed of seven or eight functional genes depending on cultivars. Three rice HKT genes, OsHKT1;1, OsHKT1;4 and OsHKT1;5, are known to...

Descripción completa

Detalles Bibliográficos
Autores principales: Khan, Imran, Mohamed, Sonia, Regnault, Thomas, Mieulet, Delphine, Guiderdoni, Emmanuel, Sentenac, Hervé, Véry, Anne-Aliénor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7406799/
https://www.ncbi.nlm.nih.gov/pubmed/32849692
http://dx.doi.org/10.3389/fpls.2020.01130
_version_ 1783567487571329024
author Khan, Imran
Mohamed, Sonia
Regnault, Thomas
Mieulet, Delphine
Guiderdoni, Emmanuel
Sentenac, Hervé
Véry, Anne-Aliénor
author_facet Khan, Imran
Mohamed, Sonia
Regnault, Thomas
Mieulet, Delphine
Guiderdoni, Emmanuel
Sentenac, Hervé
Véry, Anne-Aliénor
author_sort Khan, Imran
collection PubMed
description HKT Na(+) transporters correspond to major salt tolerance QTLs in different plant species and are targets of great interest for breeders. In rice, the HKT family is composed of seven or eight functional genes depending on cultivars. Three rice HKT genes, OsHKT1;1, OsHKT1;4 and OsHKT1;5, are known to contribute to salt tolerance by reducing Na(+) accumulation in shoots upon salt stress. Here, we further investigate the mechanisms by which OsHKT1;4 contributes to this process and extend this analysis to the role of this transporter in plants in presence of low Na(+) concentrations. By analyzing transgenic rice plants expressing a GUS reporter gene construct, we observed that OsHKT1;4 is mainly expressed in xylem parenchyma in both roots and leaves. Using mutant lines expressing artificial microRNA that selectively reduced OsHKT1;4 expression, the involvement of OsHKT1;4 in retrieving Na(+) from the xylem sap in the roots upon salt stress was evidenced. Since OsHKT1;4 was found to be also well expressed in the roots in absence of salt stress, we extended the analysis of its role when plants were subjected to non-toxic Na(+) conditions (0.5 and 5 mM). Our finding that the transporter, expressed in Xenopus oocytes, displayed a relatively high affinity for Na(+), just above 1 mM, provided first support to the hypothesis that OsHKT1;4 could have a physiological role at low Na(+) concentrations. We observed that progressive desalinization of the xylem sap along its ascent to the leaf blades still occurred in plants grown at submillimolar Na(+) concentration, and that OsHKT1;4 was involved in reducing xylem sap Na(+) concentration in roots in these conditions too. Its contribution to tissue desalinization from roots to young mature leaf blades appeared to be rather similar in the whole range of explored external Na(+) concentrations, from submillimolar to salt stress conditions. Our data therefore indicate that HKT transporters can be involved in controlling Na(+) translocation from roots to shoots in a much wider range of Na(+) concentrations than previously thought. This asks questions about the roles of such a transporter-mediated maintaining of tissue Na(+) content gradients in non-toxic conditions.
format Online
Article
Text
id pubmed-7406799
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-74067992020-08-25 Constitutive Contribution by the Rice OsHKT1;4 Na(+) Transporter to Xylem Sap Desalinization and Low Na(+) Accumulation in Young Leaves Under Low as High External Na(+) Conditions Khan, Imran Mohamed, Sonia Regnault, Thomas Mieulet, Delphine Guiderdoni, Emmanuel Sentenac, Hervé Véry, Anne-Aliénor Front Plant Sci Plant Science HKT Na(+) transporters correspond to major salt tolerance QTLs in different plant species and are targets of great interest for breeders. In rice, the HKT family is composed of seven or eight functional genes depending on cultivars. Three rice HKT genes, OsHKT1;1, OsHKT1;4 and OsHKT1;5, are known to contribute to salt tolerance by reducing Na(+) accumulation in shoots upon salt stress. Here, we further investigate the mechanisms by which OsHKT1;4 contributes to this process and extend this analysis to the role of this transporter in plants in presence of low Na(+) concentrations. By analyzing transgenic rice plants expressing a GUS reporter gene construct, we observed that OsHKT1;4 is mainly expressed in xylem parenchyma in both roots and leaves. Using mutant lines expressing artificial microRNA that selectively reduced OsHKT1;4 expression, the involvement of OsHKT1;4 in retrieving Na(+) from the xylem sap in the roots upon salt stress was evidenced. Since OsHKT1;4 was found to be also well expressed in the roots in absence of salt stress, we extended the analysis of its role when plants were subjected to non-toxic Na(+) conditions (0.5 and 5 mM). Our finding that the transporter, expressed in Xenopus oocytes, displayed a relatively high affinity for Na(+), just above 1 mM, provided first support to the hypothesis that OsHKT1;4 could have a physiological role at low Na(+) concentrations. We observed that progressive desalinization of the xylem sap along its ascent to the leaf blades still occurred in plants grown at submillimolar Na(+) concentration, and that OsHKT1;4 was involved in reducing xylem sap Na(+) concentration in roots in these conditions too. Its contribution to tissue desalinization from roots to young mature leaf blades appeared to be rather similar in the whole range of explored external Na(+) concentrations, from submillimolar to salt stress conditions. Our data therefore indicate that HKT transporters can be involved in controlling Na(+) translocation from roots to shoots in a much wider range of Na(+) concentrations than previously thought. This asks questions about the roles of such a transporter-mediated maintaining of tissue Na(+) content gradients in non-toxic conditions. Frontiers Media S.A. 2020-07-30 /pmc/articles/PMC7406799/ /pubmed/32849692 http://dx.doi.org/10.3389/fpls.2020.01130 Text en Copyright © 2020 Khan, Mohamed, Regnault, Mieulet, Guiderdoni, Sentenac and Véry http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Khan, Imran
Mohamed, Sonia
Regnault, Thomas
Mieulet, Delphine
Guiderdoni, Emmanuel
Sentenac, Hervé
Véry, Anne-Aliénor
Constitutive Contribution by the Rice OsHKT1;4 Na(+) Transporter to Xylem Sap Desalinization and Low Na(+) Accumulation in Young Leaves Under Low as High External Na(+) Conditions
title Constitutive Contribution by the Rice OsHKT1;4 Na(+) Transporter to Xylem Sap Desalinization and Low Na(+) Accumulation in Young Leaves Under Low as High External Na(+) Conditions
title_full Constitutive Contribution by the Rice OsHKT1;4 Na(+) Transporter to Xylem Sap Desalinization and Low Na(+) Accumulation in Young Leaves Under Low as High External Na(+) Conditions
title_fullStr Constitutive Contribution by the Rice OsHKT1;4 Na(+) Transporter to Xylem Sap Desalinization and Low Na(+) Accumulation in Young Leaves Under Low as High External Na(+) Conditions
title_full_unstemmed Constitutive Contribution by the Rice OsHKT1;4 Na(+) Transporter to Xylem Sap Desalinization and Low Na(+) Accumulation in Young Leaves Under Low as High External Na(+) Conditions
title_short Constitutive Contribution by the Rice OsHKT1;4 Na(+) Transporter to Xylem Sap Desalinization and Low Na(+) Accumulation in Young Leaves Under Low as High External Na(+) Conditions
title_sort constitutive contribution by the rice oshkt1;4 na(+) transporter to xylem sap desalinization and low na(+) accumulation in young leaves under low as high external na(+) conditions
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7406799/
https://www.ncbi.nlm.nih.gov/pubmed/32849692
http://dx.doi.org/10.3389/fpls.2020.01130
work_keys_str_mv AT khanimran constitutivecontributionbythericeoshkt14natransportertoxylemsapdesalinizationandlownaaccumulationinyoungleavesunderlowashighexternalnaconditions
AT mohamedsonia constitutivecontributionbythericeoshkt14natransportertoxylemsapdesalinizationandlownaaccumulationinyoungleavesunderlowashighexternalnaconditions
AT regnaultthomas constitutivecontributionbythericeoshkt14natransportertoxylemsapdesalinizationandlownaaccumulationinyoungleavesunderlowashighexternalnaconditions
AT mieuletdelphine constitutivecontributionbythericeoshkt14natransportertoxylemsapdesalinizationandlownaaccumulationinyoungleavesunderlowashighexternalnaconditions
AT guiderdoniemmanuel constitutivecontributionbythericeoshkt14natransportertoxylemsapdesalinizationandlownaaccumulationinyoungleavesunderlowashighexternalnaconditions
AT sentenacherve constitutivecontributionbythericeoshkt14natransportertoxylemsapdesalinizationandlownaaccumulationinyoungleavesunderlowashighexternalnaconditions
AT veryannealienor constitutivecontributionbythericeoshkt14natransportertoxylemsapdesalinizationandlownaaccumulationinyoungleavesunderlowashighexternalnaconditions