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Modulation of plant root growth by nitrogen source‐defined regulation of polar auxin transport

Availability of the essential macronutrient nitrogen in soil plays a critical role in plant growth, development, and impacts agricultural productivity. Plants have evolved different strategies for sensing and responding to heterogeneous nitrogen distribution. Modulation of root system architecture,...

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Autores principales: Ötvös, Krisztina, Marconi, Marco, Vega, Andrea, O’Brien, Jose, Johnson, Alexander, Abualia, Rashed, Antonielli, Livio, Montesinos, Juan Carlos, Zhang, Yuzhou, Tan, Shutang, Cuesta, Candela, Artner, Christina, Bouguyon, Eleonore, Gojon, Alain, Friml, Jirí, Gutiérrez, Rodrigo A., Wabnik, Krzysztof, Benková, Eva
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7849315/
https://www.ncbi.nlm.nih.gov/pubmed/33399250
http://dx.doi.org/10.15252/embj.2020106862
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author Ötvös, Krisztina
Marconi, Marco
Vega, Andrea
O’Brien, Jose
Johnson, Alexander
Abualia, Rashed
Antonielli, Livio
Montesinos, Juan Carlos
Zhang, Yuzhou
Tan, Shutang
Cuesta, Candela
Artner, Christina
Bouguyon, Eleonore
Gojon, Alain
Friml, Jirí
Gutiérrez, Rodrigo A.
Wabnik, Krzysztof
Benková, Eva
author_facet Ötvös, Krisztina
Marconi, Marco
Vega, Andrea
O’Brien, Jose
Johnson, Alexander
Abualia, Rashed
Antonielli, Livio
Montesinos, Juan Carlos
Zhang, Yuzhou
Tan, Shutang
Cuesta, Candela
Artner, Christina
Bouguyon, Eleonore
Gojon, Alain
Friml, Jirí
Gutiérrez, Rodrigo A.
Wabnik, Krzysztof
Benková, Eva
author_sort Ötvös, Krisztina
collection PubMed
description Availability of the essential macronutrient nitrogen in soil plays a critical role in plant growth, development, and impacts agricultural productivity. Plants have evolved different strategies for sensing and responding to heterogeneous nitrogen distribution. Modulation of root system architecture, including primary root growth and branching, is among the most essential plant adaptions to ensure adequate nitrogen acquisition. However, the immediate molecular pathways coordinating the adjustment of root growth in response to distinct nitrogen sources, such as nitrate or ammonium, are poorly understood. Here, we show that growth as manifested by cell division and elongation is synchronized by coordinated auxin flux between two adjacent outer tissue layers of the root. This coordination is achieved by nitrate‐dependent dephosphorylation of the PIN2 auxin efflux carrier at a previously uncharacterized phosphorylation site, leading to subsequent PIN2 lateralization and thereby regulating auxin flow between adjacent tissues. A dynamic computer model based on our experimental data successfully recapitulates experimental observations. Our study provides mechanistic insights broadening our understanding of root growth mechanisms in dynamic environments.
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spelling pubmed-78493152021-02-04 Modulation of plant root growth by nitrogen source‐defined regulation of polar auxin transport Ötvös, Krisztina Marconi, Marco Vega, Andrea O’Brien, Jose Johnson, Alexander Abualia, Rashed Antonielli, Livio Montesinos, Juan Carlos Zhang, Yuzhou Tan, Shutang Cuesta, Candela Artner, Christina Bouguyon, Eleonore Gojon, Alain Friml, Jirí Gutiérrez, Rodrigo A. Wabnik, Krzysztof Benková, Eva EMBO J Articles Availability of the essential macronutrient nitrogen in soil plays a critical role in plant growth, development, and impacts agricultural productivity. Plants have evolved different strategies for sensing and responding to heterogeneous nitrogen distribution. Modulation of root system architecture, including primary root growth and branching, is among the most essential plant adaptions to ensure adequate nitrogen acquisition. However, the immediate molecular pathways coordinating the adjustment of root growth in response to distinct nitrogen sources, such as nitrate or ammonium, are poorly understood. Here, we show that growth as manifested by cell division and elongation is synchronized by coordinated auxin flux between two adjacent outer tissue layers of the root. This coordination is achieved by nitrate‐dependent dephosphorylation of the PIN2 auxin efflux carrier at a previously uncharacterized phosphorylation site, leading to subsequent PIN2 lateralization and thereby regulating auxin flow between adjacent tissues. A dynamic computer model based on our experimental data successfully recapitulates experimental observations. Our study provides mechanistic insights broadening our understanding of root growth mechanisms in dynamic environments. John Wiley and Sons Inc. 2021-01-05 2021-02-01 /pmc/articles/PMC7849315/ /pubmed/33399250 http://dx.doi.org/10.15252/embj.2020106862 Text en © 2021 The Authors. Published under the terms of the CC BY 4.0 license This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Articles
Ötvös, Krisztina
Marconi, Marco
Vega, Andrea
O’Brien, Jose
Johnson, Alexander
Abualia, Rashed
Antonielli, Livio
Montesinos, Juan Carlos
Zhang, Yuzhou
Tan, Shutang
Cuesta, Candela
Artner, Christina
Bouguyon, Eleonore
Gojon, Alain
Friml, Jirí
Gutiérrez, Rodrigo A.
Wabnik, Krzysztof
Benková, Eva
Modulation of plant root growth by nitrogen source‐defined regulation of polar auxin transport
title Modulation of plant root growth by nitrogen source‐defined regulation of polar auxin transport
title_full Modulation of plant root growth by nitrogen source‐defined regulation of polar auxin transport
title_fullStr Modulation of plant root growth by nitrogen source‐defined regulation of polar auxin transport
title_full_unstemmed Modulation of plant root growth by nitrogen source‐defined regulation of polar auxin transport
title_short Modulation of plant root growth by nitrogen source‐defined regulation of polar auxin transport
title_sort modulation of plant root growth by nitrogen source‐defined regulation of polar auxin transport
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7849315/
https://www.ncbi.nlm.nih.gov/pubmed/33399250
http://dx.doi.org/10.15252/embj.2020106862
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