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A Novel Signaling Pathway Required for Arabidopsis Endodermal Root Organization Shapes the Rhizosphere Microbiome

The Casparian strip (CS) constitutes a physical diffusion barrier to water and nutrients in plant roots, which is formed by the polar deposition of lignin polymer in the endodermis tissue. The precise pattern of lignin deposition is determined by the scaffolding activity of membrane-bound Casparian...

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Autores principales: Durr, Julius, Reyt, Guilhem, Spaepen, Stijn, Hilton, Sally, Meehan, Cathal, Qi, Wu, Kamiya, Takehiro, Flis, Paulina, Dickinson, Hugh G, Feher, Attila, Shivshankar, Umashankar, Pavagadhi, Shruti, Swarup, Sanjay, Salt, David, Bending, Gary D, Gutierrez-Marcos, Jose
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8112839/
https://www.ncbi.nlm.nih.gov/pubmed/33475132
http://dx.doi.org/10.1093/pcp/pcaa170
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author Durr, Julius
Reyt, Guilhem
Spaepen, Stijn
Hilton, Sally
Meehan, Cathal
Qi, Wu
Kamiya, Takehiro
Flis, Paulina
Dickinson, Hugh G
Feher, Attila
Shivshankar, Umashankar
Pavagadhi, Shruti
Swarup, Sanjay
Salt, David
Bending, Gary D
Gutierrez-Marcos, Jose
author_facet Durr, Julius
Reyt, Guilhem
Spaepen, Stijn
Hilton, Sally
Meehan, Cathal
Qi, Wu
Kamiya, Takehiro
Flis, Paulina
Dickinson, Hugh G
Feher, Attila
Shivshankar, Umashankar
Pavagadhi, Shruti
Swarup, Sanjay
Salt, David
Bending, Gary D
Gutierrez-Marcos, Jose
author_sort Durr, Julius
collection PubMed
description The Casparian strip (CS) constitutes a physical diffusion barrier to water and nutrients in plant roots, which is formed by the polar deposition of lignin polymer in the endodermis tissue. The precise pattern of lignin deposition is determined by the scaffolding activity of membrane-bound Casparian Strip domain proteins (CASPs), but little is known of the mechanism(s) directing this process. Here, we demonstrate that Endodermis-specific Receptor-like Kinase 1 (ERK1) and, to a lesser extent, ROP Binding Kinase1 (RBK1) are also involved in regulating CS formation, with the former playing an essential role in lignin deposition as well as in the localization of CASP1. We show that ERK1 is localized to the cytoplasm and nucleus of the endodermis and that together with the circadian clock regulator, Time for Coffee (TIC), forms part of a novel signaling pathway necessary for correct CS organization and suberization of the endodermis, with their single or combined loss of function resulting in altered root microbiome composition. In addition, we found that other mutants displaying defects in suberin deposition at the CS also display altered root exudates and microbiome composition. Thus, our work reveals a complex network of signaling factors operating within the root endodermis that establish both the CS diffusion barrier and influence the microbial composition of the rhizosphere.
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spelling pubmed-81128392021-05-17 A Novel Signaling Pathway Required for Arabidopsis Endodermal Root Organization Shapes the Rhizosphere Microbiome Durr, Julius Reyt, Guilhem Spaepen, Stijn Hilton, Sally Meehan, Cathal Qi, Wu Kamiya, Takehiro Flis, Paulina Dickinson, Hugh G Feher, Attila Shivshankar, Umashankar Pavagadhi, Shruti Swarup, Sanjay Salt, David Bending, Gary D Gutierrez-Marcos, Jose Plant Cell Physiol Rapid Papers The Casparian strip (CS) constitutes a physical diffusion barrier to water and nutrients in plant roots, which is formed by the polar deposition of lignin polymer in the endodermis tissue. The precise pattern of lignin deposition is determined by the scaffolding activity of membrane-bound Casparian Strip domain proteins (CASPs), but little is known of the mechanism(s) directing this process. Here, we demonstrate that Endodermis-specific Receptor-like Kinase 1 (ERK1) and, to a lesser extent, ROP Binding Kinase1 (RBK1) are also involved in regulating CS formation, with the former playing an essential role in lignin deposition as well as in the localization of CASP1. We show that ERK1 is localized to the cytoplasm and nucleus of the endodermis and that together with the circadian clock regulator, Time for Coffee (TIC), forms part of a novel signaling pathway necessary for correct CS organization and suberization of the endodermis, with their single or combined loss of function resulting in altered root microbiome composition. In addition, we found that other mutants displaying defects in suberin deposition at the CS also display altered root exudates and microbiome composition. Thus, our work reveals a complex network of signaling factors operating within the root endodermis that establish both the CS diffusion barrier and influence the microbial composition of the rhizosphere. Oxford University Press 2021-01-22 /pmc/articles/PMC8112839/ /pubmed/33475132 http://dx.doi.org/10.1093/pcp/pcaa170 Text en � The Author(s) 2021. Published by Oxford University Press on behalf of Japanese Society of Plant Physiologists. https://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/ (https://creativecommons.org/licenses/by/4.0/) ), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Rapid Papers
Durr, Julius
Reyt, Guilhem
Spaepen, Stijn
Hilton, Sally
Meehan, Cathal
Qi, Wu
Kamiya, Takehiro
Flis, Paulina
Dickinson, Hugh G
Feher, Attila
Shivshankar, Umashankar
Pavagadhi, Shruti
Swarup, Sanjay
Salt, David
Bending, Gary D
Gutierrez-Marcos, Jose
A Novel Signaling Pathway Required for Arabidopsis Endodermal Root Organization Shapes the Rhizosphere Microbiome
title A Novel Signaling Pathway Required for Arabidopsis Endodermal Root Organization Shapes the Rhizosphere Microbiome
title_full A Novel Signaling Pathway Required for Arabidopsis Endodermal Root Organization Shapes the Rhizosphere Microbiome
title_fullStr A Novel Signaling Pathway Required for Arabidopsis Endodermal Root Organization Shapes the Rhizosphere Microbiome
title_full_unstemmed A Novel Signaling Pathway Required for Arabidopsis Endodermal Root Organization Shapes the Rhizosphere Microbiome
title_short A Novel Signaling Pathway Required for Arabidopsis Endodermal Root Organization Shapes the Rhizosphere Microbiome
title_sort novel signaling pathway required for arabidopsis endodermal root organization shapes the rhizosphere microbiome
topic Rapid Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8112839/
https://www.ncbi.nlm.nih.gov/pubmed/33475132
http://dx.doi.org/10.1093/pcp/pcaa170
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