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Contributions of two cytosolic glutamine synthetase isozymes to ammonium assimilation in Arabidopsis roots

Glutamine synthetase (GS) catalyzes a reaction that incorporates ammonium into glutamate and yields glutamine in the cytosol and chloroplasts. Although the enzymatic characteristics of the GS1 isozymes are well known, their physiological functions in ammonium assimilation and regulation in roots rem...

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Autores principales: Konishi, Noriyuki, Ishiyama, Keiki, Beier, Marcel Pascal, Inoue, Eri, Kanno, Keiichi, Yamaya, Tomoyuki, Takahashi, Hideki, Kojima, Soichi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5441914/
https://www.ncbi.nlm.nih.gov/pubmed/28007952
http://dx.doi.org/10.1093/jxb/erw454
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author Konishi, Noriyuki
Ishiyama, Keiki
Beier, Marcel Pascal
Inoue, Eri
Kanno, Keiichi
Yamaya, Tomoyuki
Takahashi, Hideki
Kojima, Soichi
author_facet Konishi, Noriyuki
Ishiyama, Keiki
Beier, Marcel Pascal
Inoue, Eri
Kanno, Keiichi
Yamaya, Tomoyuki
Takahashi, Hideki
Kojima, Soichi
author_sort Konishi, Noriyuki
collection PubMed
description Glutamine synthetase (GS) catalyzes a reaction that incorporates ammonium into glutamate and yields glutamine in the cytosol and chloroplasts. Although the enzymatic characteristics of the GS1 isozymes are well known, their physiological functions in ammonium assimilation and regulation in roots remain unclear. In this study we show evidence that two cytosolic GS1 isozymes (GLN1;2 and GLN1;3) contribute to ammonium assimilation in Arabidopsis roots. Arabidopsis T-DNA insertion lines for GLN1;2 and GLN1;3 (i.e. gln1;2 and gln1;3 single-mutants), the gln1;2:gln1;3 double-mutant, and the wild-type accession (Col-0) were grown in hydroponic culture with variable concentrations of ammonium to compare their growth, and their content of nitrogen, carbon, ammonium, and amino acids. GLN1;2 and GLN1;3 promoter-dependent green fluorescent protein was observed under conditions with or without ammonium supply. Loss of GLN1;2 caused significant suppression of plant growth and glutamine biosynthesis under ammonium-replete conditions. In contrast, loss of GLN1;3 caused slight defects in growth and Gln biosynthesis that were only visible based on a comparison of the gln1;2 single- and gln1;2:gln1;3 double-mutants. GLN1;2, being the most abundantly expressed GS1 isozyme, markedly increased following ammonium supply and its promoter activity was localized at the cortex and epidermis, while GLN1;3 showed only low expression at the pericycle, suggesting their different physiological contributions to ammonium assimilation in roots. The GLN1;2 promoter-deletion analysis identified regulatory sequences required for controlling ammonium-responsive gene expression of GLN1;2 in Arabidopsis roots. These results shed light on GLN1 isozyme-specific regulatory mechanisms in Arabidopsis that allow adaptation to an ammonium-replete environment.
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spelling pubmed-54419142017-05-30 Contributions of two cytosolic glutamine synthetase isozymes to ammonium assimilation in Arabidopsis roots Konishi, Noriyuki Ishiyama, Keiki Beier, Marcel Pascal Inoue, Eri Kanno, Keiichi Yamaya, Tomoyuki Takahashi, Hideki Kojima, Soichi J Exp Bot Research Paper Glutamine synthetase (GS) catalyzes a reaction that incorporates ammonium into glutamate and yields glutamine in the cytosol and chloroplasts. Although the enzymatic characteristics of the GS1 isozymes are well known, their physiological functions in ammonium assimilation and regulation in roots remain unclear. In this study we show evidence that two cytosolic GS1 isozymes (GLN1;2 and GLN1;3) contribute to ammonium assimilation in Arabidopsis roots. Arabidopsis T-DNA insertion lines for GLN1;2 and GLN1;3 (i.e. gln1;2 and gln1;3 single-mutants), the gln1;2:gln1;3 double-mutant, and the wild-type accession (Col-0) were grown in hydroponic culture with variable concentrations of ammonium to compare their growth, and their content of nitrogen, carbon, ammonium, and amino acids. GLN1;2 and GLN1;3 promoter-dependent green fluorescent protein was observed under conditions with or without ammonium supply. Loss of GLN1;2 caused significant suppression of plant growth and glutamine biosynthesis under ammonium-replete conditions. In contrast, loss of GLN1;3 caused slight defects in growth and Gln biosynthesis that were only visible based on a comparison of the gln1;2 single- and gln1;2:gln1;3 double-mutants. GLN1;2, being the most abundantly expressed GS1 isozyme, markedly increased following ammonium supply and its promoter activity was localized at the cortex and epidermis, while GLN1;3 showed only low expression at the pericycle, suggesting their different physiological contributions to ammonium assimilation in roots. The GLN1;2 promoter-deletion analysis identified regulatory sequences required for controlling ammonium-responsive gene expression of GLN1;2 in Arabidopsis roots. These results shed light on GLN1 isozyme-specific regulatory mechanisms in Arabidopsis that allow adaptation to an ammonium-replete environment. Oxford University Press 2017-01-01 2016-12-22 /pmc/articles/PMC5441914/ /pubmed/28007952 http://dx.doi.org/10.1093/jxb/erw454 Text en © The Author 2016. Published by Oxford University Press on behalf of the Society for Experimental Biology. 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 reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Paper
Konishi, Noriyuki
Ishiyama, Keiki
Beier, Marcel Pascal
Inoue, Eri
Kanno, Keiichi
Yamaya, Tomoyuki
Takahashi, Hideki
Kojima, Soichi
Contributions of two cytosolic glutamine synthetase isozymes to ammonium assimilation in Arabidopsis roots
title Contributions of two cytosolic glutamine synthetase isozymes to ammonium assimilation in Arabidopsis roots
title_full Contributions of two cytosolic glutamine synthetase isozymes to ammonium assimilation in Arabidopsis roots
title_fullStr Contributions of two cytosolic glutamine synthetase isozymes to ammonium assimilation in Arabidopsis roots
title_full_unstemmed Contributions of two cytosolic glutamine synthetase isozymes to ammonium assimilation in Arabidopsis roots
title_short Contributions of two cytosolic glutamine synthetase isozymes to ammonium assimilation in Arabidopsis roots
title_sort contributions of two cytosolic glutamine synthetase isozymes to ammonium assimilation in arabidopsis roots
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5441914/
https://www.ncbi.nlm.nih.gov/pubmed/28007952
http://dx.doi.org/10.1093/jxb/erw454
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