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A phenol-enriched cuticle is ancestral to lignin evolution in land plants

Lignin, one of the most abundant biopolymers on Earth, derives from the plant phenolic metabolism. It appeared upon terrestrialization and is thought critical for plant colonization of land. Early diverging land plants do not form lignin, but already have elements of its biosynthetic machinery. Here...

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Autores principales: Renault, Hugues, Alber, Annette, Horst, Nelly A., Basilio Lopes, Alexandra, Fich, Eric A., Kriegshauser, Lucie, Wiedemann, Gertrud, Ullmann, Pascaline, Herrgott, Laurence, Erhardt, Mathieu, Pineau, Emmanuelle, Ehlting, Jürgen, Schmitt, Martine, Rose, Jocelyn K. C., Reski, Ralf, Werck-Reichhart, Danièle
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5344971/
https://www.ncbi.nlm.nih.gov/pubmed/28270693
http://dx.doi.org/10.1038/ncomms14713
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author Renault, Hugues
Alber, Annette
Horst, Nelly A.
Basilio Lopes, Alexandra
Fich, Eric A.
Kriegshauser, Lucie
Wiedemann, Gertrud
Ullmann, Pascaline
Herrgott, Laurence
Erhardt, Mathieu
Pineau, Emmanuelle
Ehlting, Jürgen
Schmitt, Martine
Rose, Jocelyn K. C.
Reski, Ralf
Werck-Reichhart, Danièle
author_facet Renault, Hugues
Alber, Annette
Horst, Nelly A.
Basilio Lopes, Alexandra
Fich, Eric A.
Kriegshauser, Lucie
Wiedemann, Gertrud
Ullmann, Pascaline
Herrgott, Laurence
Erhardt, Mathieu
Pineau, Emmanuelle
Ehlting, Jürgen
Schmitt, Martine
Rose, Jocelyn K. C.
Reski, Ralf
Werck-Reichhart, Danièle
author_sort Renault, Hugues
collection PubMed
description Lignin, one of the most abundant biopolymers on Earth, derives from the plant phenolic metabolism. It appeared upon terrestrialization and is thought critical for plant colonization of land. Early diverging land plants do not form lignin, but already have elements of its biosynthetic machinery. Here we delete in a moss the P450 oxygenase that defines the entry point in angiosperm lignin metabolism, and find that its pre-lignin pathway is essential for development. This pathway does not involve biochemical regulation via shikimate coupling, but instead is coupled with ascorbate catabolism, and controls the synthesis of the moss cuticle, which prevents desiccation and organ fusion. These cuticles share common features with lignin, cutin and suberin, and may represent the extant representative of a common ancestor. Our results demonstrate a critical role for the ancestral phenolic metabolism in moss erect growth and cuticle permeability, consistent with importance in plant adaptation to terrestrial conditions.
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spelling pubmed-53449712017-03-21 A phenol-enriched cuticle is ancestral to lignin evolution in land plants Renault, Hugues Alber, Annette Horst, Nelly A. Basilio Lopes, Alexandra Fich, Eric A. Kriegshauser, Lucie Wiedemann, Gertrud Ullmann, Pascaline Herrgott, Laurence Erhardt, Mathieu Pineau, Emmanuelle Ehlting, Jürgen Schmitt, Martine Rose, Jocelyn K. C. Reski, Ralf Werck-Reichhart, Danièle Nat Commun Article Lignin, one of the most abundant biopolymers on Earth, derives from the plant phenolic metabolism. It appeared upon terrestrialization and is thought critical for plant colonization of land. Early diverging land plants do not form lignin, but already have elements of its biosynthetic machinery. Here we delete in a moss the P450 oxygenase that defines the entry point in angiosperm lignin metabolism, and find that its pre-lignin pathway is essential for development. This pathway does not involve biochemical regulation via shikimate coupling, but instead is coupled with ascorbate catabolism, and controls the synthesis of the moss cuticle, which prevents desiccation and organ fusion. These cuticles share common features with lignin, cutin and suberin, and may represent the extant representative of a common ancestor. Our results demonstrate a critical role for the ancestral phenolic metabolism in moss erect growth and cuticle permeability, consistent with importance in plant adaptation to terrestrial conditions. Nature Publishing Group 2017-03-08 /pmc/articles/PMC5344971/ /pubmed/28270693 http://dx.doi.org/10.1038/ncomms14713 Text en Copyright © 2017, The Author(s) http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article's Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Renault, Hugues
Alber, Annette
Horst, Nelly A.
Basilio Lopes, Alexandra
Fich, Eric A.
Kriegshauser, Lucie
Wiedemann, Gertrud
Ullmann, Pascaline
Herrgott, Laurence
Erhardt, Mathieu
Pineau, Emmanuelle
Ehlting, Jürgen
Schmitt, Martine
Rose, Jocelyn K. C.
Reski, Ralf
Werck-Reichhart, Danièle
A phenol-enriched cuticle is ancestral to lignin evolution in land plants
title A phenol-enriched cuticle is ancestral to lignin evolution in land plants
title_full A phenol-enriched cuticle is ancestral to lignin evolution in land plants
title_fullStr A phenol-enriched cuticle is ancestral to lignin evolution in land plants
title_full_unstemmed A phenol-enriched cuticle is ancestral to lignin evolution in land plants
title_short A phenol-enriched cuticle is ancestral to lignin evolution in land plants
title_sort phenol-enriched cuticle is ancestral to lignin evolution in land plants
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5344971/
https://www.ncbi.nlm.nih.gov/pubmed/28270693
http://dx.doi.org/10.1038/ncomms14713
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