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Root zone–specific localization of AMTs determines ammonium transport pathways and nitrogen allocation to shoots

In plants, nutrient provision of shoots depends on the uptake and transport of nutrients across the root tissue to the vascular system. Nutrient delivery to the vasculature is mediated via the apoplastic transport pathway (ATP), which uses the free space in the cell walls and is controlled by apopla...

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Autores principales: Duan, Fengying, Giehl, Ricardo F. H., Geldner, Niko, Salt, David E., von Wirén, Nicolaus
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6218093/
https://www.ncbi.nlm.nih.gov/pubmed/30356235
http://dx.doi.org/10.1371/journal.pbio.2006024
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author Duan, Fengying
Giehl, Ricardo F. H.
Geldner, Niko
Salt, David E.
von Wirén, Nicolaus
author_facet Duan, Fengying
Giehl, Ricardo F. H.
Geldner, Niko
Salt, David E.
von Wirén, Nicolaus
author_sort Duan, Fengying
collection PubMed
description In plants, nutrient provision of shoots depends on the uptake and transport of nutrients across the root tissue to the vascular system. Nutrient delivery to the vasculature is mediated via the apoplastic transport pathway (ATP), which uses the free space in the cell walls and is controlled by apoplastic barriers and nutrient transporters at the endodermis, or via the symplastic transport pathway (STP). However, the relative importance of these transport routes remains elusive. Here, we show that the STP, mediated by the epidermal ammonium transporter 1;3 (AMT1;3), dominates the radial movement of ammonium across the root tissue when external ammonium is low, whereas apoplastic transport controlled by AMT1;2 at the endodermis prevails at high external ammonium. Then, AMT1;2 favors nitrogen (N) allocation to the shoot, revealing a major importance of the ATP for nutrient partitioning to shoots. When an endodermal bypass was introduced by abolishing Casparian strip (CS) formation, apoplastic ammonium transport decreased. By contrast, symplastic transport was increased, indicating synergism between the STP and the endodermal bypass. We further establish that the formation of apoplastic barriers alters the cell type–specific localization of AMTs and determines STP and ATP contributions. These results show how radial transport pathways vary along the longitudinal gradient of the root axis and contribute to nutrient partitioning between roots and shoots.
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spelling pubmed-62180932018-11-19 Root zone–specific localization of AMTs determines ammonium transport pathways and nitrogen allocation to shoots Duan, Fengying Giehl, Ricardo F. H. Geldner, Niko Salt, David E. von Wirén, Nicolaus PLoS Biol Research Article In plants, nutrient provision of shoots depends on the uptake and transport of nutrients across the root tissue to the vascular system. Nutrient delivery to the vasculature is mediated via the apoplastic transport pathway (ATP), which uses the free space in the cell walls and is controlled by apoplastic barriers and nutrient transporters at the endodermis, or via the symplastic transport pathway (STP). However, the relative importance of these transport routes remains elusive. Here, we show that the STP, mediated by the epidermal ammonium transporter 1;3 (AMT1;3), dominates the radial movement of ammonium across the root tissue when external ammonium is low, whereas apoplastic transport controlled by AMT1;2 at the endodermis prevails at high external ammonium. Then, AMT1;2 favors nitrogen (N) allocation to the shoot, revealing a major importance of the ATP for nutrient partitioning to shoots. When an endodermal bypass was introduced by abolishing Casparian strip (CS) formation, apoplastic ammonium transport decreased. By contrast, symplastic transport was increased, indicating synergism between the STP and the endodermal bypass. We further establish that the formation of apoplastic barriers alters the cell type–specific localization of AMTs and determines STP and ATP contributions. These results show how radial transport pathways vary along the longitudinal gradient of the root axis and contribute to nutrient partitioning between roots and shoots. Public Library of Science 2018-10-24 /pmc/articles/PMC6218093/ /pubmed/30356235 http://dx.doi.org/10.1371/journal.pbio.2006024 Text en © 2018 Duan 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
Duan, Fengying
Giehl, Ricardo F. H.
Geldner, Niko
Salt, David E.
von Wirén, Nicolaus
Root zone–specific localization of AMTs determines ammonium transport pathways and nitrogen allocation to shoots
title Root zone–specific localization of AMTs determines ammonium transport pathways and nitrogen allocation to shoots
title_full Root zone–specific localization of AMTs determines ammonium transport pathways and nitrogen allocation to shoots
title_fullStr Root zone–specific localization of AMTs determines ammonium transport pathways and nitrogen allocation to shoots
title_full_unstemmed Root zone–specific localization of AMTs determines ammonium transport pathways and nitrogen allocation to shoots
title_short Root zone–specific localization of AMTs determines ammonium transport pathways and nitrogen allocation to shoots
title_sort root zone–specific localization of amts determines ammonium transport pathways and nitrogen allocation to shoots
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6218093/
https://www.ncbi.nlm.nih.gov/pubmed/30356235
http://dx.doi.org/10.1371/journal.pbio.2006024
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