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Black Poplar (Populus nigra L.) Root Extracellular Trap, Structural and Molecular Remodeling in Response to Osmotic Stress

The root extracellular trap (RET) consists of root-associated, cap-derived cells (root AC-DCs) and their mucilaginous secretions, and forms a structure around the root tip that protects against biotic and abiotic stresses. However, there is little information concerning the changes undergone by the...

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Autores principales: Busont, Océane, Durambur, Gaëlle, Bernard, Sophie, Plasson, Carole, Joudiou, Camille, Baude, Laura, Chefdor, Françoise, Depierreux, Christiane, Héricourt, François, Larcher, Mélanie, Malik, Sonia, Boulogne, Isabelle, Driouich, Azeddine, Carpin, Sabine, Lamblin, Frédéric
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10047092/
https://www.ncbi.nlm.nih.gov/pubmed/36980198
http://dx.doi.org/10.3390/cells12060858
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author Busont, Océane
Durambur, Gaëlle
Bernard, Sophie
Plasson, Carole
Joudiou, Camille
Baude, Laura
Chefdor, Françoise
Depierreux, Christiane
Héricourt, François
Larcher, Mélanie
Malik, Sonia
Boulogne, Isabelle
Driouich, Azeddine
Carpin, Sabine
Lamblin, Frédéric
author_facet Busont, Océane
Durambur, Gaëlle
Bernard, Sophie
Plasson, Carole
Joudiou, Camille
Baude, Laura
Chefdor, Françoise
Depierreux, Christiane
Héricourt, François
Larcher, Mélanie
Malik, Sonia
Boulogne, Isabelle
Driouich, Azeddine
Carpin, Sabine
Lamblin, Frédéric
author_sort Busont, Océane
collection PubMed
description The root extracellular trap (RET) consists of root-associated, cap-derived cells (root AC-DCs) and their mucilaginous secretions, and forms a structure around the root tip that protects against biotic and abiotic stresses. However, there is little information concerning the changes undergone by the RET during droughts, especially for tree species. Morphological and immunocytochemical approaches were used to study the RET of black poplar (Populus nigra L.) seedlings grown in vitro under optimal conditions (on agar-gelled medium) or when polyethylene glycol-mediated (PEG(6000)—infused agar-gelled medium) was used to mimic drought conditions through osmotic stress. Under optimal conditions, the root cap released three populations of individual AC-DC morphotypes, with a very low proportion of spherical morphotypes, and equivalent proportions of intermediate and elongated morphotypes. Immunolabeling experiments using anti-glycan antibodies specific to cell wall polysaccharide and arabinogalactan protein (AGP) epitopes revealed the presence of homogalacturonan (HG), galactan chains of rhamnogalacturonan-I (RG-I), and AGPs in root AC-DC cell walls. The data also showed the presence of xylogalacturonan (XGA), xylan, AGPs, and low levels of arabinans in the mucilage. The findings also showed that under osmotic stress conditions, both the number of AC-DCs (spherical and intermediate morphotypes) and the total quantity of mucilage per root tip increased, whereas the mucilage was devoid of the epitopes associated with the polysaccharides RG-I, XGA, xylan, and AGPs. Osmotic stress also led to reduced root growth and increased root expression of the P5CS2 gene, which is involved in proline biosynthesis and cellular osmolarity maintenance (or preservation) in aerial parts. Together, our findings show that the RET is a dynamic structure that undergoes pronounced structural and molecular remodeling, which might contribute to the survival of the root tip under osmotic conditions.
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spelling pubmed-100470922023-03-29 Black Poplar (Populus nigra L.) Root Extracellular Trap, Structural and Molecular Remodeling in Response to Osmotic Stress Busont, Océane Durambur, Gaëlle Bernard, Sophie Plasson, Carole Joudiou, Camille Baude, Laura Chefdor, Françoise Depierreux, Christiane Héricourt, François Larcher, Mélanie Malik, Sonia Boulogne, Isabelle Driouich, Azeddine Carpin, Sabine Lamblin, Frédéric Cells Article The root extracellular trap (RET) consists of root-associated, cap-derived cells (root AC-DCs) and their mucilaginous secretions, and forms a structure around the root tip that protects against biotic and abiotic stresses. However, there is little information concerning the changes undergone by the RET during droughts, especially for tree species. Morphological and immunocytochemical approaches were used to study the RET of black poplar (Populus nigra L.) seedlings grown in vitro under optimal conditions (on agar-gelled medium) or when polyethylene glycol-mediated (PEG(6000)—infused agar-gelled medium) was used to mimic drought conditions through osmotic stress. Under optimal conditions, the root cap released three populations of individual AC-DC morphotypes, with a very low proportion of spherical morphotypes, and equivalent proportions of intermediate and elongated morphotypes. Immunolabeling experiments using anti-glycan antibodies specific to cell wall polysaccharide and arabinogalactan protein (AGP) epitopes revealed the presence of homogalacturonan (HG), galactan chains of rhamnogalacturonan-I (RG-I), and AGPs in root AC-DC cell walls. The data also showed the presence of xylogalacturonan (XGA), xylan, AGPs, and low levels of arabinans in the mucilage. The findings also showed that under osmotic stress conditions, both the number of AC-DCs (spherical and intermediate morphotypes) and the total quantity of mucilage per root tip increased, whereas the mucilage was devoid of the epitopes associated with the polysaccharides RG-I, XGA, xylan, and AGPs. Osmotic stress also led to reduced root growth and increased root expression of the P5CS2 gene, which is involved in proline biosynthesis and cellular osmolarity maintenance (or preservation) in aerial parts. Together, our findings show that the RET is a dynamic structure that undergoes pronounced structural and molecular remodeling, which might contribute to the survival of the root tip under osmotic conditions. MDPI 2023-03-09 /pmc/articles/PMC10047092/ /pubmed/36980198 http://dx.doi.org/10.3390/cells12060858 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Busont, Océane
Durambur, Gaëlle
Bernard, Sophie
Plasson, Carole
Joudiou, Camille
Baude, Laura
Chefdor, Françoise
Depierreux, Christiane
Héricourt, François
Larcher, Mélanie
Malik, Sonia
Boulogne, Isabelle
Driouich, Azeddine
Carpin, Sabine
Lamblin, Frédéric
Black Poplar (Populus nigra L.) Root Extracellular Trap, Structural and Molecular Remodeling in Response to Osmotic Stress
title Black Poplar (Populus nigra L.) Root Extracellular Trap, Structural and Molecular Remodeling in Response to Osmotic Stress
title_full Black Poplar (Populus nigra L.) Root Extracellular Trap, Structural and Molecular Remodeling in Response to Osmotic Stress
title_fullStr Black Poplar (Populus nigra L.) Root Extracellular Trap, Structural and Molecular Remodeling in Response to Osmotic Stress
title_full_unstemmed Black Poplar (Populus nigra L.) Root Extracellular Trap, Structural and Molecular Remodeling in Response to Osmotic Stress
title_short Black Poplar (Populus nigra L.) Root Extracellular Trap, Structural and Molecular Remodeling in Response to Osmotic Stress
title_sort black poplar (populus nigra l.) root extracellular trap, structural and molecular remodeling in response to osmotic stress
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10047092/
https://www.ncbi.nlm.nih.gov/pubmed/36980198
http://dx.doi.org/10.3390/cells12060858
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