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Root-specific camalexin biosynthesis controls the plant growth-promoting effects of multiple bacterial strains

Plants in their natural ecosystems interact with numerous microorganisms, but how they influence their microbiota is still elusive. We observed that sulfatase activity in soil, which can be used as a measure of rhizosphere microbial activity, is differently affected by Arabidopsis accessions. Follow...

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Autores principales: Koprivova, Anna, Schuck, Stefan, Jacoby, Richard P., Klinkhammer, Irene, Welter, Bastian, Leson, Lisa, Martyn, Anna, Nauen, Julia, Grabenhorst, Niklas, Mandelkow, Jan F., Zuccaro, Alga, Zeier, Jürgen, Kopriva, Stanislav
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6681745/
https://www.ncbi.nlm.nih.gov/pubmed/31311863
http://dx.doi.org/10.1073/pnas.1818604116
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author Koprivova, Anna
Schuck, Stefan
Jacoby, Richard P.
Klinkhammer, Irene
Welter, Bastian
Leson, Lisa
Martyn, Anna
Nauen, Julia
Grabenhorst, Niklas
Mandelkow, Jan F.
Zuccaro, Alga
Zeier, Jürgen
Kopriva, Stanislav
author_facet Koprivova, Anna
Schuck, Stefan
Jacoby, Richard P.
Klinkhammer, Irene
Welter, Bastian
Leson, Lisa
Martyn, Anna
Nauen, Julia
Grabenhorst, Niklas
Mandelkow, Jan F.
Zuccaro, Alga
Zeier, Jürgen
Kopriva, Stanislav
author_sort Koprivova, Anna
collection PubMed
description Plants in their natural ecosystems interact with numerous microorganisms, but how they influence their microbiota is still elusive. We observed that sulfatase activity in soil, which can be used as a measure of rhizosphere microbial activity, is differently affected by Arabidopsis accessions. Following a genome-wide association analysis of the variation in sulfatase activity we identified a candidate gene encoding an uncharacterized cytochrome P450, CYP71A27. Loss of this gene resulted in 2 different and independent microbiota-specific phenotypes: A lower sulfatase activity in the rhizosphere and a loss of plant growth-promoting effect by Pseudomonas sp. CH267. On the other hand, tolerance to leaf pathogens was not affected, which agreed with prevalent expression of CYP71A27 in the root vasculature. The phenotypes of cyp71A27 mutant were similar to those of cyp71A12 and cyp71A13, known mutants in synthesis of camalexin, a sulfur-containing indolic defense compound. Indeed, the cyp71A27 mutant accumulated less camalexin in the roots upon elicitation with silver nitrate or flagellin. Importantly, addition of camalexin complemented both the sulfatase activity and the loss of plant growth promotion by Pseudomonas sp. CH267. Two alleles of CYP71A27 were identified among Arabidopsis accessions, differing by a substitution of Glu373 by Gln, which correlated with the ability to induce camalexin synthesis and to gain fresh weight in response to Pseudomonas sp. CH267. Thus, CYP71A27 is an additional component in the camalexin synthesis pathway, contributing specifically to the control of plant microbe interactions in the root.
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spelling pubmed-66817452019-08-07 Root-specific camalexin biosynthesis controls the plant growth-promoting effects of multiple bacterial strains Koprivova, Anna Schuck, Stefan Jacoby, Richard P. Klinkhammer, Irene Welter, Bastian Leson, Lisa Martyn, Anna Nauen, Julia Grabenhorst, Niklas Mandelkow, Jan F. Zuccaro, Alga Zeier, Jürgen Kopriva, Stanislav Proc Natl Acad Sci U S A PNAS Plus Plants in their natural ecosystems interact with numerous microorganisms, but how they influence their microbiota is still elusive. We observed that sulfatase activity in soil, which can be used as a measure of rhizosphere microbial activity, is differently affected by Arabidopsis accessions. Following a genome-wide association analysis of the variation in sulfatase activity we identified a candidate gene encoding an uncharacterized cytochrome P450, CYP71A27. Loss of this gene resulted in 2 different and independent microbiota-specific phenotypes: A lower sulfatase activity in the rhizosphere and a loss of plant growth-promoting effect by Pseudomonas sp. CH267. On the other hand, tolerance to leaf pathogens was not affected, which agreed with prevalent expression of CYP71A27 in the root vasculature. The phenotypes of cyp71A27 mutant were similar to those of cyp71A12 and cyp71A13, known mutants in synthesis of camalexin, a sulfur-containing indolic defense compound. Indeed, the cyp71A27 mutant accumulated less camalexin in the roots upon elicitation with silver nitrate or flagellin. Importantly, addition of camalexin complemented both the sulfatase activity and the loss of plant growth promotion by Pseudomonas sp. CH267. Two alleles of CYP71A27 were identified among Arabidopsis accessions, differing by a substitution of Glu373 by Gln, which correlated with the ability to induce camalexin synthesis and to gain fresh weight in response to Pseudomonas sp. CH267. Thus, CYP71A27 is an additional component in the camalexin synthesis pathway, contributing specifically to the control of plant microbe interactions in the root. National Academy of Sciences 2019-07-30 2019-07-16 /pmc/articles/PMC6681745/ /pubmed/31311863 http://dx.doi.org/10.1073/pnas.1818604116 Text en Copyright © 2019 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/ https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle PNAS Plus
Koprivova, Anna
Schuck, Stefan
Jacoby, Richard P.
Klinkhammer, Irene
Welter, Bastian
Leson, Lisa
Martyn, Anna
Nauen, Julia
Grabenhorst, Niklas
Mandelkow, Jan F.
Zuccaro, Alga
Zeier, Jürgen
Kopriva, Stanislav
Root-specific camalexin biosynthesis controls the plant growth-promoting effects of multiple bacterial strains
title Root-specific camalexin biosynthesis controls the plant growth-promoting effects of multiple bacterial strains
title_full Root-specific camalexin biosynthesis controls the plant growth-promoting effects of multiple bacterial strains
title_fullStr Root-specific camalexin biosynthesis controls the plant growth-promoting effects of multiple bacterial strains
title_full_unstemmed Root-specific camalexin biosynthesis controls the plant growth-promoting effects of multiple bacterial strains
title_short Root-specific camalexin biosynthesis controls the plant growth-promoting effects of multiple bacterial strains
title_sort root-specific camalexin biosynthesis controls the plant growth-promoting effects of multiple bacterial strains
topic PNAS Plus
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6681745/
https://www.ncbi.nlm.nih.gov/pubmed/31311863
http://dx.doi.org/10.1073/pnas.1818604116
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