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A new family of structurally conserved fungal effectors displays epistatic interactions with plant resistance proteins

Recognition of a pathogen avirulence (AVR) effector protein by a cognate plant resistance (R) protein triggers a set of immune responses that render the plant resistant. Pathogens can escape this so-called Effector-Triggered Immunity (ETI) by different mechanisms including the deletion or loss-of-fu...

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Autores principales: Lazar, Noureddine, Mesarich, Carl H., Petit-Houdenot, Yohann, Talbi, Nacera, Li de la Sierra-Gallay, Ines, Zélie, Emilie, Blondeau, Karine, Gracy, Jérôme, Ollivier, Bénédicte, Blaise, Françoise, Rouxel, Thierry, Balesdent, Marie-Hélène, Idnurm, Alexander, van Tilbeurgh, Herman, Fudal, Isabelle
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9292093/
https://www.ncbi.nlm.nih.gov/pubmed/35793393
http://dx.doi.org/10.1371/journal.ppat.1010664
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author Lazar, Noureddine
Mesarich, Carl H.
Petit-Houdenot, Yohann
Talbi, Nacera
Li de la Sierra-Gallay, Ines
Zélie, Emilie
Blondeau, Karine
Gracy, Jérôme
Ollivier, Bénédicte
Blaise, Françoise
Rouxel, Thierry
Balesdent, Marie-Hélène
Idnurm, Alexander
van Tilbeurgh, Herman
Fudal, Isabelle
author_facet Lazar, Noureddine
Mesarich, Carl H.
Petit-Houdenot, Yohann
Talbi, Nacera
Li de la Sierra-Gallay, Ines
Zélie, Emilie
Blondeau, Karine
Gracy, Jérôme
Ollivier, Bénédicte
Blaise, Françoise
Rouxel, Thierry
Balesdent, Marie-Hélène
Idnurm, Alexander
van Tilbeurgh, Herman
Fudal, Isabelle
author_sort Lazar, Noureddine
collection PubMed
description Recognition of a pathogen avirulence (AVR) effector protein by a cognate plant resistance (R) protein triggers a set of immune responses that render the plant resistant. Pathogens can escape this so-called Effector-Triggered Immunity (ETI) by different mechanisms including the deletion or loss-of-function mutation of the AVR gene, the incorporation of point mutations that allow recognition to be evaded while maintaining virulence function, and the acquisition of new effectors that suppress AVR recognition. The Dothideomycete Leptosphaeria maculans, causal agent of oilseed rape stem canker, is one of the few fungal pathogens where suppression of ETI by an AVR effector has been demonstrated. Indeed, AvrLm4-7 suppresses Rlm3- and Rlm9-mediated resistance triggered by AvrLm3 and AvrLm5-9, respectively. The presence of AvrLm4-7 does not impede AvrLm3 and AvrLm5-9 expression, and the three AVR proteins do not appear to physically interact. To decipher the epistatic interaction between these L. maculans AVR effectors, we determined the crystal structure of AvrLm5-9 and obtained a 3D model of AvrLm3, based on the crystal structure of Ecp11-1, a homologous AVR effector candidate from Fulvia fulva. Despite a lack of sequence similarity, AvrLm5-9 and AvrLm3 are structural analogues of AvrLm4-7 (structure previously characterized). Structure-informed sequence database searches identified a larger number of putative structural analogues among L. maculans effector candidates, including the AVR effector AvrLmS-Lep2, all produced during the early stages of oilseed rape infection, as well as among effector candidates from other phytopathogenic fungi. These structural analogues are named LARS (for Leptosphaeria AviRulence and Suppressing) effectors. Remarkably, transformants of L. maculans expressing one of these structural analogues, Ecp11-1, triggered oilseed rape immunity in several genotypes carrying Rlm3. Furthermore, this resistance could be suppressed by AvrLm4-7. These results suggest that Ecp11-1 shares a common activity with AvrLm3 within the host plant which is detected by Rlm3, or that the Ecp11-1 structure is sufficiently close to that of AvrLm3 to be recognized by Rlm3.
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spelling pubmed-92920932022-07-19 A new family of structurally conserved fungal effectors displays epistatic interactions with plant resistance proteins Lazar, Noureddine Mesarich, Carl H. Petit-Houdenot, Yohann Talbi, Nacera Li de la Sierra-Gallay, Ines Zélie, Emilie Blondeau, Karine Gracy, Jérôme Ollivier, Bénédicte Blaise, Françoise Rouxel, Thierry Balesdent, Marie-Hélène Idnurm, Alexander van Tilbeurgh, Herman Fudal, Isabelle PLoS Pathog Research Article Recognition of a pathogen avirulence (AVR) effector protein by a cognate plant resistance (R) protein triggers a set of immune responses that render the plant resistant. Pathogens can escape this so-called Effector-Triggered Immunity (ETI) by different mechanisms including the deletion or loss-of-function mutation of the AVR gene, the incorporation of point mutations that allow recognition to be evaded while maintaining virulence function, and the acquisition of new effectors that suppress AVR recognition. The Dothideomycete Leptosphaeria maculans, causal agent of oilseed rape stem canker, is one of the few fungal pathogens where suppression of ETI by an AVR effector has been demonstrated. Indeed, AvrLm4-7 suppresses Rlm3- and Rlm9-mediated resistance triggered by AvrLm3 and AvrLm5-9, respectively. The presence of AvrLm4-7 does not impede AvrLm3 and AvrLm5-9 expression, and the three AVR proteins do not appear to physically interact. To decipher the epistatic interaction between these L. maculans AVR effectors, we determined the crystal structure of AvrLm5-9 and obtained a 3D model of AvrLm3, based on the crystal structure of Ecp11-1, a homologous AVR effector candidate from Fulvia fulva. Despite a lack of sequence similarity, AvrLm5-9 and AvrLm3 are structural analogues of AvrLm4-7 (structure previously characterized). Structure-informed sequence database searches identified a larger number of putative structural analogues among L. maculans effector candidates, including the AVR effector AvrLmS-Lep2, all produced during the early stages of oilseed rape infection, as well as among effector candidates from other phytopathogenic fungi. These structural analogues are named LARS (for Leptosphaeria AviRulence and Suppressing) effectors. Remarkably, transformants of L. maculans expressing one of these structural analogues, Ecp11-1, triggered oilseed rape immunity in several genotypes carrying Rlm3. Furthermore, this resistance could be suppressed by AvrLm4-7. These results suggest that Ecp11-1 shares a common activity with AvrLm3 within the host plant which is detected by Rlm3, or that the Ecp11-1 structure is sufficiently close to that of AvrLm3 to be recognized by Rlm3. Public Library of Science 2022-07-06 /pmc/articles/PMC9292093/ /pubmed/35793393 http://dx.doi.org/10.1371/journal.ppat.1010664 Text en © 2022 Lazar et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Lazar, Noureddine
Mesarich, Carl H.
Petit-Houdenot, Yohann
Talbi, Nacera
Li de la Sierra-Gallay, Ines
Zélie, Emilie
Blondeau, Karine
Gracy, Jérôme
Ollivier, Bénédicte
Blaise, Françoise
Rouxel, Thierry
Balesdent, Marie-Hélène
Idnurm, Alexander
van Tilbeurgh, Herman
Fudal, Isabelle
A new family of structurally conserved fungal effectors displays epistatic interactions with plant resistance proteins
title A new family of structurally conserved fungal effectors displays epistatic interactions with plant resistance proteins
title_full A new family of structurally conserved fungal effectors displays epistatic interactions with plant resistance proteins
title_fullStr A new family of structurally conserved fungal effectors displays epistatic interactions with plant resistance proteins
title_full_unstemmed A new family of structurally conserved fungal effectors displays epistatic interactions with plant resistance proteins
title_short A new family of structurally conserved fungal effectors displays epistatic interactions with plant resistance proteins
title_sort new family of structurally conserved fungal effectors displays epistatic interactions with plant resistance proteins
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9292093/
https://www.ncbi.nlm.nih.gov/pubmed/35793393
http://dx.doi.org/10.1371/journal.ppat.1010664
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