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AtHKT1 drives adaptation of Arabidopsis thaliana to salinity by reducing floral sodium content

Arabidopsis thaliana high-affinity potassium transporter 1 (AtHKT1) limits the root-to-shoot sodium transportation and is believed to be essential for salt tolerance in A. thaliana. Nevertheless, natural accessions with ‘weak allele’ of AtHKT1, e.g. Tsu-1, are mainly distributed in saline areas and...

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Autores principales: An, Dong, Chen, Jiu-Geng, Gao, Yi-Qun, Li, Xiang, Chao, Zhen-Fei, Chen, Zi-Ru, Li, Qian-Qian, Han, Mei-Ling, Wang, Ya-Ling, Wang, Yong-Fei, Chao, Dai-Yin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5679648/
https://www.ncbi.nlm.nih.gov/pubmed/29084222
http://dx.doi.org/10.1371/journal.pgen.1007086
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author An, Dong
Chen, Jiu-Geng
Gao, Yi-Qun
Li, Xiang
Chao, Zhen-Fei
Chen, Zi-Ru
Li, Qian-Qian
Han, Mei-Ling
Wang, Ya-Ling
Wang, Yong-Fei
Chao, Dai-Yin
author_facet An, Dong
Chen, Jiu-Geng
Gao, Yi-Qun
Li, Xiang
Chao, Zhen-Fei
Chen, Zi-Ru
Li, Qian-Qian
Han, Mei-Ling
Wang, Ya-Ling
Wang, Yong-Fei
Chao, Dai-Yin
author_sort An, Dong
collection PubMed
description Arabidopsis thaliana high-affinity potassium transporter 1 (AtHKT1) limits the root-to-shoot sodium transportation and is believed to be essential for salt tolerance in A. thaliana. Nevertheless, natural accessions with ‘weak allele’ of AtHKT1, e.g. Tsu-1, are mainly distributed in saline areas and are more tolerant to salinity. These findings challenge the role of AtHKT1 in salt tolerance and call into question the involvement of AtHKT1 in salinity adaptation in A. thaliana. Here, we report that AtHKT1 indeed drives natural variation in the salt tolerance of A. thaliana and the coastal AtHKT1, so-called weak allele, is actually hyper-functional in reducing flowers sodium content upon salt stress. Our data showed that AtHKT1 positively contributes to saline adaptation in a linear manner. Forward and reverse genetics analysis established that the single AtHKT1 locus is responsible for the variation in the salinity adaptation between Col-0 and Tsu-1. Reciprocal grafting experiments revealed that shoot AtHKT1 determines the salt tolerance of Tsu-1, whereas root AtHKT1 primarily drives the salt tolerance of Col-0. Furthermore, evidence indicated that Tsu-1 AtHKT1 is highly expressed in stems and is more effective compared to Col-0 AtHKT1 at limiting sodium flow to the flowers. Such efficient retrieval of sodium to the reproductive organ endows Tsu-1 with stronger fertility compared to Col-0 upon salt stress, thus improving Tsu-1 adaptation to a coastal environment. To conclude, our data not only confirm the role of AtHKT1 in saline adaptation, but also sheds light on our understanding of the salt tolerance mechanisms in plants.
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spelling pubmed-56796482017-11-18 AtHKT1 drives adaptation of Arabidopsis thaliana to salinity by reducing floral sodium content An, Dong Chen, Jiu-Geng Gao, Yi-Qun Li, Xiang Chao, Zhen-Fei Chen, Zi-Ru Li, Qian-Qian Han, Mei-Ling Wang, Ya-Ling Wang, Yong-Fei Chao, Dai-Yin PLoS Genet Research Article Arabidopsis thaliana high-affinity potassium transporter 1 (AtHKT1) limits the root-to-shoot sodium transportation and is believed to be essential for salt tolerance in A. thaliana. Nevertheless, natural accessions with ‘weak allele’ of AtHKT1, e.g. Tsu-1, are mainly distributed in saline areas and are more tolerant to salinity. These findings challenge the role of AtHKT1 in salt tolerance and call into question the involvement of AtHKT1 in salinity adaptation in A. thaliana. Here, we report that AtHKT1 indeed drives natural variation in the salt tolerance of A. thaliana and the coastal AtHKT1, so-called weak allele, is actually hyper-functional in reducing flowers sodium content upon salt stress. Our data showed that AtHKT1 positively contributes to saline adaptation in a linear manner. Forward and reverse genetics analysis established that the single AtHKT1 locus is responsible for the variation in the salinity adaptation between Col-0 and Tsu-1. Reciprocal grafting experiments revealed that shoot AtHKT1 determines the salt tolerance of Tsu-1, whereas root AtHKT1 primarily drives the salt tolerance of Col-0. Furthermore, evidence indicated that Tsu-1 AtHKT1 is highly expressed in stems and is more effective compared to Col-0 AtHKT1 at limiting sodium flow to the flowers. Such efficient retrieval of sodium to the reproductive organ endows Tsu-1 with stronger fertility compared to Col-0 upon salt stress, thus improving Tsu-1 adaptation to a coastal environment. To conclude, our data not only confirm the role of AtHKT1 in saline adaptation, but also sheds light on our understanding of the salt tolerance mechanisms in plants. Public Library of Science 2017-10-30 /pmc/articles/PMC5679648/ /pubmed/29084222 http://dx.doi.org/10.1371/journal.pgen.1007086 Text en © 2017 An 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
An, Dong
Chen, Jiu-Geng
Gao, Yi-Qun
Li, Xiang
Chao, Zhen-Fei
Chen, Zi-Ru
Li, Qian-Qian
Han, Mei-Ling
Wang, Ya-Ling
Wang, Yong-Fei
Chao, Dai-Yin
AtHKT1 drives adaptation of Arabidopsis thaliana to salinity by reducing floral sodium content
title AtHKT1 drives adaptation of Arabidopsis thaliana to salinity by reducing floral sodium content
title_full AtHKT1 drives adaptation of Arabidopsis thaliana to salinity by reducing floral sodium content
title_fullStr AtHKT1 drives adaptation of Arabidopsis thaliana to salinity by reducing floral sodium content
title_full_unstemmed AtHKT1 drives adaptation of Arabidopsis thaliana to salinity by reducing floral sodium content
title_short AtHKT1 drives adaptation of Arabidopsis thaliana to salinity by reducing floral sodium content
title_sort athkt1 drives adaptation of arabidopsis thaliana to salinity by reducing floral sodium content
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5679648/
https://www.ncbi.nlm.nih.gov/pubmed/29084222
http://dx.doi.org/10.1371/journal.pgen.1007086
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