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The Independent Acquisition of Plant Root Nitrogen-Fixing Symbiosis in Fabids Recruited the Same Genetic Pathway for Nodule Organogenesis

Only species belonging to the Fabid clade, limited to four classes and ten families of Angiosperms, are able to form nitrogen-fixing root nodule symbioses (RNS) with soil bacteria. This concerns plants of the legume family (Fabaceae) and Parasponia (Cannabaceae) associated with the Gram-negative pro...

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Autores principales: Svistoonoff, Sergio, Benabdoun, Faiza Meriem, Nambiar-Veetil, Mathish, Imanishi, Leandro, Vaissayre, Virginie, Cesari, Stella, Diagne, Nathalie, Hocher, Valérie, de Billy, Françoise, Bonneau, Jocelyne, Wall, Luis, Ykhlef, Nadia, Rosenberg, Charles, Bogusz, Didier, Franche, Claudine, Gherbi, Hassen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3669324/
https://www.ncbi.nlm.nih.gov/pubmed/23741336
http://dx.doi.org/10.1371/journal.pone.0064515
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author Svistoonoff, Sergio
Benabdoun, Faiza Meriem
Nambiar-Veetil, Mathish
Imanishi, Leandro
Vaissayre, Virginie
Cesari, Stella
Diagne, Nathalie
Hocher, Valérie
de Billy, Françoise
Bonneau, Jocelyne
Wall, Luis
Ykhlef, Nadia
Rosenberg, Charles
Bogusz, Didier
Franche, Claudine
Gherbi, Hassen
author_facet Svistoonoff, Sergio
Benabdoun, Faiza Meriem
Nambiar-Veetil, Mathish
Imanishi, Leandro
Vaissayre, Virginie
Cesari, Stella
Diagne, Nathalie
Hocher, Valérie
de Billy, Françoise
Bonneau, Jocelyne
Wall, Luis
Ykhlef, Nadia
Rosenberg, Charles
Bogusz, Didier
Franche, Claudine
Gherbi, Hassen
author_sort Svistoonoff, Sergio
collection PubMed
description Only species belonging to the Fabid clade, limited to four classes and ten families of Angiosperms, are able to form nitrogen-fixing root nodule symbioses (RNS) with soil bacteria. This concerns plants of the legume family (Fabaceae) and Parasponia (Cannabaceae) associated with the Gram-negative proteobacteria collectively called rhizobia and actinorhizal plants associated with the Gram-positive actinomycetes of the genus Frankia. Calcium and calmodulin-dependent protein kinase (CCaMK) is a key component of the common signaling pathway leading to both rhizobial and arbuscular mycorrhizal symbioses (AM) and plays a central role in cross-signaling between root nodule organogenesis and infection processes. Here, we show that CCaMK is also needed for successful actinorhiza formation and interaction with AM fungi in the actinorhizal tree Casuarina glauca and is also able to restore both nodulation and AM symbioses in a Medicago truncatula ccamk mutant. Besides, we expressed auto-active CgCCaMK lacking the auto-inhibitory/CaM domain in two actinorhizal species: C. glauca (Casuarinaceae), which develops an intracellular infection pathway, and Discaria trinervis (Rhamnaceae) which is characterized by an ancestral intercellular infection mechanism. In both species, we found induction of nodulation independent of Frankia similar to response to the activation of CCaMK in the rhizobia-legume symbiosis and conclude that the regulation of actinorhiza organogenesis is conserved regardless of the infection mode. It has been suggested that rhizobial and actinorhizal symbioses originated from a common ancestor with several independent evolutionary origins. Our findings are consistent with the recruitment of a similar genetic pathway governing rhizobial and Frankia nodule organogenesis.
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spelling pubmed-36693242013-06-05 The Independent Acquisition of Plant Root Nitrogen-Fixing Symbiosis in Fabids Recruited the Same Genetic Pathway for Nodule Organogenesis Svistoonoff, Sergio Benabdoun, Faiza Meriem Nambiar-Veetil, Mathish Imanishi, Leandro Vaissayre, Virginie Cesari, Stella Diagne, Nathalie Hocher, Valérie de Billy, Françoise Bonneau, Jocelyne Wall, Luis Ykhlef, Nadia Rosenberg, Charles Bogusz, Didier Franche, Claudine Gherbi, Hassen PLoS One Research Article Only species belonging to the Fabid clade, limited to four classes and ten families of Angiosperms, are able to form nitrogen-fixing root nodule symbioses (RNS) with soil bacteria. This concerns plants of the legume family (Fabaceae) and Parasponia (Cannabaceae) associated with the Gram-negative proteobacteria collectively called rhizobia and actinorhizal plants associated with the Gram-positive actinomycetes of the genus Frankia. Calcium and calmodulin-dependent protein kinase (CCaMK) is a key component of the common signaling pathway leading to both rhizobial and arbuscular mycorrhizal symbioses (AM) and plays a central role in cross-signaling between root nodule organogenesis and infection processes. Here, we show that CCaMK is also needed for successful actinorhiza formation and interaction with AM fungi in the actinorhizal tree Casuarina glauca and is also able to restore both nodulation and AM symbioses in a Medicago truncatula ccamk mutant. Besides, we expressed auto-active CgCCaMK lacking the auto-inhibitory/CaM domain in two actinorhizal species: C. glauca (Casuarinaceae), which develops an intracellular infection pathway, and Discaria trinervis (Rhamnaceae) which is characterized by an ancestral intercellular infection mechanism. In both species, we found induction of nodulation independent of Frankia similar to response to the activation of CCaMK in the rhizobia-legume symbiosis and conclude that the regulation of actinorhiza organogenesis is conserved regardless of the infection mode. It has been suggested that rhizobial and actinorhizal symbioses originated from a common ancestor with several independent evolutionary origins. Our findings are consistent with the recruitment of a similar genetic pathway governing rhizobial and Frankia nodule organogenesis. Public Library of Science 2013-05-31 /pmc/articles/PMC3669324/ /pubmed/23741336 http://dx.doi.org/10.1371/journal.pone.0064515 Text en © 2013 Svistoonoff 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Svistoonoff, Sergio
Benabdoun, Faiza Meriem
Nambiar-Veetil, Mathish
Imanishi, Leandro
Vaissayre, Virginie
Cesari, Stella
Diagne, Nathalie
Hocher, Valérie
de Billy, Françoise
Bonneau, Jocelyne
Wall, Luis
Ykhlef, Nadia
Rosenberg, Charles
Bogusz, Didier
Franche, Claudine
Gherbi, Hassen
The Independent Acquisition of Plant Root Nitrogen-Fixing Symbiosis in Fabids Recruited the Same Genetic Pathway for Nodule Organogenesis
title The Independent Acquisition of Plant Root Nitrogen-Fixing Symbiosis in Fabids Recruited the Same Genetic Pathway for Nodule Organogenesis
title_full The Independent Acquisition of Plant Root Nitrogen-Fixing Symbiosis in Fabids Recruited the Same Genetic Pathway for Nodule Organogenesis
title_fullStr The Independent Acquisition of Plant Root Nitrogen-Fixing Symbiosis in Fabids Recruited the Same Genetic Pathway for Nodule Organogenesis
title_full_unstemmed The Independent Acquisition of Plant Root Nitrogen-Fixing Symbiosis in Fabids Recruited the Same Genetic Pathway for Nodule Organogenesis
title_short The Independent Acquisition of Plant Root Nitrogen-Fixing Symbiosis in Fabids Recruited the Same Genetic Pathway for Nodule Organogenesis
title_sort independent acquisition of plant root nitrogen-fixing symbiosis in fabids recruited the same genetic pathway for nodule organogenesis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3669324/
https://www.ncbi.nlm.nih.gov/pubmed/23741336
http://dx.doi.org/10.1371/journal.pone.0064515
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