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Endophytic yeast protect plants against metal toxicity by inhibiting plant metal uptake through an ethylene‐dependent mechanism

Toxic metal pollution requires significant adjustments in plant metabolism. Here, we show that the plant microbiota plays an important role in this process. The endophytic Sporobolomyces ruberrimus isolated from a serpentine population of Arabidopsis arenosa protected plants against excess metals. C...

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Autores principales: Domka, Agnieszka, Jędrzejczyk, Roman, Ważny, Rafał, Gustab, Maciej, Kowalski, Michał, Nosek, Michał, Bizan, Jakub, Puschenreiter, Markus, Vaculίk, Marek, Kováč, Ján, Rozpądek, Piotr
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10100480/
https://www.ncbi.nlm.nih.gov/pubmed/36286193
http://dx.doi.org/10.1111/pce.14473
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author Domka, Agnieszka
Jędrzejczyk, Roman
Ważny, Rafał
Gustab, Maciej
Kowalski, Michał
Nosek, Michał
Bizan, Jakub
Puschenreiter, Markus
Vaculίk, Marek
Kováč, Ján
Rozpądek, Piotr
author_facet Domka, Agnieszka
Jędrzejczyk, Roman
Ważny, Rafał
Gustab, Maciej
Kowalski, Michał
Nosek, Michał
Bizan, Jakub
Puschenreiter, Markus
Vaculίk, Marek
Kováč, Ján
Rozpądek, Piotr
author_sort Domka, Agnieszka
collection PubMed
description Toxic metal pollution requires significant adjustments in plant metabolism. Here, we show that the plant microbiota plays an important role in this process. The endophytic Sporobolomyces ruberrimus isolated from a serpentine population of Arabidopsis arenosa protected plants against excess metals. Coculture with its native host and Arabidopsis thaliana inhibited Fe and Ni uptake. It had no effect on host Zn and Cd uptake. Fe uptake inhibition was confirmed in wheat and rape. Our investigations show that, for the metal inhibitory effect, the interference of microorganisms in plant ethylene homeostasis is necessary. Application of an ethylene synthesis inhibitor, as well as loss‐of‐function mutations in canonical ethylene signalling genes, prevented metal uptake inhibition by the fungus. Coculture with S. ruberrimus significantly changed the expression of Fe homeostasis genes: IRT1, OPT3, OPT6, bHLH38 and bHLH39 in wild‐type (WT) A. thaliana. The expression pattern of these genes in WT plants and in the ethylene signalling defective mutants significantly differed and coincided with the plant accumulation phenotype. Most notably, down‐regulation of the expression of IRT1 solely in WT was necessary for the inhibition of metal uptake in plants. This study shows that microorganisms optimize plant Fe and Ni uptake by fine‐tuning plant metal homeostasis.
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spelling pubmed-101004802023-04-14 Endophytic yeast protect plants against metal toxicity by inhibiting plant metal uptake through an ethylene‐dependent mechanism Domka, Agnieszka Jędrzejczyk, Roman Ważny, Rafał Gustab, Maciej Kowalski, Michał Nosek, Michał Bizan, Jakub Puschenreiter, Markus Vaculίk, Marek Kováč, Ján Rozpądek, Piotr Plant Cell Environ Original Articles Toxic metal pollution requires significant adjustments in plant metabolism. Here, we show that the plant microbiota plays an important role in this process. The endophytic Sporobolomyces ruberrimus isolated from a serpentine population of Arabidopsis arenosa protected plants against excess metals. Coculture with its native host and Arabidopsis thaliana inhibited Fe and Ni uptake. It had no effect on host Zn and Cd uptake. Fe uptake inhibition was confirmed in wheat and rape. Our investigations show that, for the metal inhibitory effect, the interference of microorganisms in plant ethylene homeostasis is necessary. Application of an ethylene synthesis inhibitor, as well as loss‐of‐function mutations in canonical ethylene signalling genes, prevented metal uptake inhibition by the fungus. Coculture with S. ruberrimus significantly changed the expression of Fe homeostasis genes: IRT1, OPT3, OPT6, bHLH38 and bHLH39 in wild‐type (WT) A. thaliana. The expression pattern of these genes in WT plants and in the ethylene signalling defective mutants significantly differed and coincided with the plant accumulation phenotype. Most notably, down‐regulation of the expression of IRT1 solely in WT was necessary for the inhibition of metal uptake in plants. This study shows that microorganisms optimize plant Fe and Ni uptake by fine‐tuning plant metal homeostasis. John Wiley and Sons Inc. 2022-11-06 2023-01 /pmc/articles/PMC10100480/ /pubmed/36286193 http://dx.doi.org/10.1111/pce.14473 Text en © 2022 The Authors. Plant, Cell & Environment published by John Wiley & Sons Ltd. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Original Articles
Domka, Agnieszka
Jędrzejczyk, Roman
Ważny, Rafał
Gustab, Maciej
Kowalski, Michał
Nosek, Michał
Bizan, Jakub
Puschenreiter, Markus
Vaculίk, Marek
Kováč, Ján
Rozpądek, Piotr
Endophytic yeast protect plants against metal toxicity by inhibiting plant metal uptake through an ethylene‐dependent mechanism
title Endophytic yeast protect plants against metal toxicity by inhibiting plant metal uptake through an ethylene‐dependent mechanism
title_full Endophytic yeast protect plants against metal toxicity by inhibiting plant metal uptake through an ethylene‐dependent mechanism
title_fullStr Endophytic yeast protect plants against metal toxicity by inhibiting plant metal uptake through an ethylene‐dependent mechanism
title_full_unstemmed Endophytic yeast protect plants against metal toxicity by inhibiting plant metal uptake through an ethylene‐dependent mechanism
title_short Endophytic yeast protect plants against metal toxicity by inhibiting plant metal uptake through an ethylene‐dependent mechanism
title_sort endophytic yeast protect plants against metal toxicity by inhibiting plant metal uptake through an ethylene‐dependent mechanism
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10100480/
https://www.ncbi.nlm.nih.gov/pubmed/36286193
http://dx.doi.org/10.1111/pce.14473
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