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Improved Salinity Tolerance of Rice Through Cell Type-Specific Expression of AtHKT1;1

Previously, cell type-specific expression of AtHKT1;1, a sodium transporter, improved sodium (Na(+)) exclusion and salinity tolerance in Arabidopsis. In the current work, AtHKT1;1, was expressed specifically in the root cortical and epidermal cells of an Arabidopsis GAL4-GFP enhancer trap line. Thes...

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Autores principales: Plett, Darren, Safwat, Gehan, Gilliham, Matthew, Skrumsager Møller, Inge, Roy, Stuart, Shirley, Neil, Jacobs, Andrew, Johnson, Alexander, Tester, Mark
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2933239/
https://www.ncbi.nlm.nih.gov/pubmed/20838445
http://dx.doi.org/10.1371/journal.pone.0012571
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author Plett, Darren
Safwat, Gehan
Gilliham, Matthew
Skrumsager Møller, Inge
Roy, Stuart
Shirley, Neil
Jacobs, Andrew
Johnson, Alexander
Tester, Mark
author_facet Plett, Darren
Safwat, Gehan
Gilliham, Matthew
Skrumsager Møller, Inge
Roy, Stuart
Shirley, Neil
Jacobs, Andrew
Johnson, Alexander
Tester, Mark
author_sort Plett, Darren
collection PubMed
description Previously, cell type-specific expression of AtHKT1;1, a sodium transporter, improved sodium (Na(+)) exclusion and salinity tolerance in Arabidopsis. In the current work, AtHKT1;1, was expressed specifically in the root cortical and epidermal cells of an Arabidopsis GAL4-GFP enhancer trap line. These transgenic plants were found to have significantly improved Na(+) exclusion under conditions of salinity stress. The feasibility of a similar biotechnological approach in crop plants was explored using a GAL4-GFP enhancer trap rice line to drive expression of AtHKT1;1 specifically in the root cortex. Compared with the background GAL4-GFP line, the rice plants expressing AtHKT1;1 had a higher fresh weight under salinity stress, which was related to a lower concentration of Na(+) in the shoots. The root-to-shoot transport of (22)Na(+) was also decreased and was correlated with an upregulation of OsHKT1;5, the native transporter responsible for Na(+) retrieval from the transpiration stream. Interestingly, in the transgenic Arabidopsis plants overexpressing AtHKT1;1 in the cortex and epidermis, the native AtHKT1;1 gene responsible for Na(+) retrieval from the transpiration stream, was also upregulated. Extra Na(+) retrieved from the xylem was stored in the outer root cells and was correlated with a significant increase in expression of the vacuolar pyrophosphatases (in Arabidopsis and rice) the activity of which would be necessary to move the additional stored Na(+) into the vacuoles of these cells. This work presents an important step in the development of abiotic stress tolerance in crop plants via targeted changes in mineral transport.
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spelling pubmed-29332392010-09-13 Improved Salinity Tolerance of Rice Through Cell Type-Specific Expression of AtHKT1;1 Plett, Darren Safwat, Gehan Gilliham, Matthew Skrumsager Møller, Inge Roy, Stuart Shirley, Neil Jacobs, Andrew Johnson, Alexander Tester, Mark PLoS One Research Article Previously, cell type-specific expression of AtHKT1;1, a sodium transporter, improved sodium (Na(+)) exclusion and salinity tolerance in Arabidopsis. In the current work, AtHKT1;1, was expressed specifically in the root cortical and epidermal cells of an Arabidopsis GAL4-GFP enhancer trap line. These transgenic plants were found to have significantly improved Na(+) exclusion under conditions of salinity stress. The feasibility of a similar biotechnological approach in crop plants was explored using a GAL4-GFP enhancer trap rice line to drive expression of AtHKT1;1 specifically in the root cortex. Compared with the background GAL4-GFP line, the rice plants expressing AtHKT1;1 had a higher fresh weight under salinity stress, which was related to a lower concentration of Na(+) in the shoots. The root-to-shoot transport of (22)Na(+) was also decreased and was correlated with an upregulation of OsHKT1;5, the native transporter responsible for Na(+) retrieval from the transpiration stream. Interestingly, in the transgenic Arabidopsis plants overexpressing AtHKT1;1 in the cortex and epidermis, the native AtHKT1;1 gene responsible for Na(+) retrieval from the transpiration stream, was also upregulated. Extra Na(+) retrieved from the xylem was stored in the outer root cells and was correlated with a significant increase in expression of the vacuolar pyrophosphatases (in Arabidopsis and rice) the activity of which would be necessary to move the additional stored Na(+) into the vacuoles of these cells. This work presents an important step in the development of abiotic stress tolerance in crop plants via targeted changes in mineral transport. Public Library of Science 2010-09-03 /pmc/articles/PMC2933239/ /pubmed/20838445 http://dx.doi.org/10.1371/journal.pone.0012571 Text en Plett et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Plett, Darren
Safwat, Gehan
Gilliham, Matthew
Skrumsager Møller, Inge
Roy, Stuart
Shirley, Neil
Jacobs, Andrew
Johnson, Alexander
Tester, Mark
Improved Salinity Tolerance of Rice Through Cell Type-Specific Expression of AtHKT1;1
title Improved Salinity Tolerance of Rice Through Cell Type-Specific Expression of AtHKT1;1
title_full Improved Salinity Tolerance of Rice Through Cell Type-Specific Expression of AtHKT1;1
title_fullStr Improved Salinity Tolerance of Rice Through Cell Type-Specific Expression of AtHKT1;1
title_full_unstemmed Improved Salinity Tolerance of Rice Through Cell Type-Specific Expression of AtHKT1;1
title_short Improved Salinity Tolerance of Rice Through Cell Type-Specific Expression of AtHKT1;1
title_sort improved salinity tolerance of rice through cell type-specific expression of athkt1;1
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2933239/
https://www.ncbi.nlm.nih.gov/pubmed/20838445
http://dx.doi.org/10.1371/journal.pone.0012571
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