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T-DNA Tagging-Based Gain-of-Function of OsHKT1;4 Reinforces Na Exclusion from Leaves and Stems but Triggers Na Toxicity in Roots of Rice Under Salt Stress

The high affinity K(+) transporter 1;4 (HKT1;4) in rice (Oryza sativa), which shows Na(+) selective transport with little K(+) transport activity, has been suggested to be involved in reducing Na in leaves and stems under salt stress. However, detailed physiological roles of OsHKT1;4 remain unknown....

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Autores principales: Oda, Yuuka, Kobayashi, Natsuko I., Tanoi, Keitaro, Ma, Jian Feng, Itou, Yukiko, Katsuhara, Maki, Itou, Takashi, Horie, Tomoaki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5796183/
https://www.ncbi.nlm.nih.gov/pubmed/29329278
http://dx.doi.org/10.3390/ijms19010235
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author Oda, Yuuka
Kobayashi, Natsuko I.
Tanoi, Keitaro
Ma, Jian Feng
Itou, Yukiko
Katsuhara, Maki
Itou, Takashi
Horie, Tomoaki
author_facet Oda, Yuuka
Kobayashi, Natsuko I.
Tanoi, Keitaro
Ma, Jian Feng
Itou, Yukiko
Katsuhara, Maki
Itou, Takashi
Horie, Tomoaki
author_sort Oda, Yuuka
collection PubMed
description The high affinity K(+) transporter 1;4 (HKT1;4) in rice (Oryza sativa), which shows Na(+) selective transport with little K(+) transport activity, has been suggested to be involved in reducing Na in leaves and stems under salt stress. However, detailed physiological roles of OsHKT1;4 remain unknown. Here, we have characterized a transfer DNA (T-DNA) insertion mutant line of rice, which overexpresses OsHKT1;4, owing to enhancer elements in the T-DNA, to gain an insight into the impact of OsHKT1;4 on salt tolerance of rice. The homozygous mutant (the O/E line) accumulated significantly lower concentrations of Na in young leaves, stems, and seeds than the sibling WT line under salt stress. Interestingly, however, the mutation rendered the O/E plants more salt sensitive than WT plants. Together with the evaluation of biomass of rice lines, rhizosphere acidification assays using a pH indicator bromocresol purple and (22)NaCl tracer experiments have led to an assumption that roots of O/E plants suffered heavier damages from Na which excessively accumulated in the root due to increased activity of Na(+) uptake and Na(+) exclusion in the vasculature. Implications toward the application of the HKT1-mediated Na(+) exclusion system to the breeding of salt tolerant crop cultivars will be discussed.
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spelling pubmed-57961832018-02-09 T-DNA Tagging-Based Gain-of-Function of OsHKT1;4 Reinforces Na Exclusion from Leaves and Stems but Triggers Na Toxicity in Roots of Rice Under Salt Stress Oda, Yuuka Kobayashi, Natsuko I. Tanoi, Keitaro Ma, Jian Feng Itou, Yukiko Katsuhara, Maki Itou, Takashi Horie, Tomoaki Int J Mol Sci Article The high affinity K(+) transporter 1;4 (HKT1;4) in rice (Oryza sativa), which shows Na(+) selective transport with little K(+) transport activity, has been suggested to be involved in reducing Na in leaves and stems under salt stress. However, detailed physiological roles of OsHKT1;4 remain unknown. Here, we have characterized a transfer DNA (T-DNA) insertion mutant line of rice, which overexpresses OsHKT1;4, owing to enhancer elements in the T-DNA, to gain an insight into the impact of OsHKT1;4 on salt tolerance of rice. The homozygous mutant (the O/E line) accumulated significantly lower concentrations of Na in young leaves, stems, and seeds than the sibling WT line under salt stress. Interestingly, however, the mutation rendered the O/E plants more salt sensitive than WT plants. Together with the evaluation of biomass of rice lines, rhizosphere acidification assays using a pH indicator bromocresol purple and (22)NaCl tracer experiments have led to an assumption that roots of O/E plants suffered heavier damages from Na which excessively accumulated in the root due to increased activity of Na(+) uptake and Na(+) exclusion in the vasculature. Implications toward the application of the HKT1-mediated Na(+) exclusion system to the breeding of salt tolerant crop cultivars will be discussed. MDPI 2018-01-12 /pmc/articles/PMC5796183/ /pubmed/29329278 http://dx.doi.org/10.3390/ijms19010235 Text en © 2018 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Oda, Yuuka
Kobayashi, Natsuko I.
Tanoi, Keitaro
Ma, Jian Feng
Itou, Yukiko
Katsuhara, Maki
Itou, Takashi
Horie, Tomoaki
T-DNA Tagging-Based Gain-of-Function of OsHKT1;4 Reinforces Na Exclusion from Leaves and Stems but Triggers Na Toxicity in Roots of Rice Under Salt Stress
title T-DNA Tagging-Based Gain-of-Function of OsHKT1;4 Reinforces Na Exclusion from Leaves and Stems but Triggers Na Toxicity in Roots of Rice Under Salt Stress
title_full T-DNA Tagging-Based Gain-of-Function of OsHKT1;4 Reinforces Na Exclusion from Leaves and Stems but Triggers Na Toxicity in Roots of Rice Under Salt Stress
title_fullStr T-DNA Tagging-Based Gain-of-Function of OsHKT1;4 Reinforces Na Exclusion from Leaves and Stems but Triggers Na Toxicity in Roots of Rice Under Salt Stress
title_full_unstemmed T-DNA Tagging-Based Gain-of-Function of OsHKT1;4 Reinforces Na Exclusion from Leaves and Stems but Triggers Na Toxicity in Roots of Rice Under Salt Stress
title_short T-DNA Tagging-Based Gain-of-Function of OsHKT1;4 Reinforces Na Exclusion from Leaves and Stems but Triggers Na Toxicity in Roots of Rice Under Salt Stress
title_sort t-dna tagging-based gain-of-function of oshkt1;4 reinforces na exclusion from leaves and stems but triggers na toxicity in roots of rice under salt stress
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5796183/
https://www.ncbi.nlm.nih.gov/pubmed/29329278
http://dx.doi.org/10.3390/ijms19010235
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