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Water Stress, Cadmium, and Plant Genotype Modulate the Rhizosphere Microbiome of Pisum sativum L.

Drought and heavy metals seriously affect plant growth and the biodiversity of the associated rhizosphere microbiomes, which, in turn, could be involved in the adaptation of plants to these environmental stresses. Rhizosphere soil was collected from a three-factor pot experiment, where pea line SGE...

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Autores principales: Kichko, Arina A., Gladkov, Grigory V., Ulianich, Pavel S., Safronova, Vera I., Pinaev, Alexander G., Sekste, Edgar A., Belimov, Andrey A., Andronov, Evgeny E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9699616/
https://www.ncbi.nlm.nih.gov/pubmed/36432739
http://dx.doi.org/10.3390/plants11223013
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author Kichko, Arina A.
Gladkov, Grigory V.
Ulianich, Pavel S.
Safronova, Vera I.
Pinaev, Alexander G.
Sekste, Edgar A.
Belimov, Andrey A.
Andronov, Evgeny E.
author_facet Kichko, Arina A.
Gladkov, Grigory V.
Ulianich, Pavel S.
Safronova, Vera I.
Pinaev, Alexander G.
Sekste, Edgar A.
Belimov, Andrey A.
Andronov, Evgeny E.
author_sort Kichko, Arina A.
collection PubMed
description Drought and heavy metals seriously affect plant growth and the biodiversity of the associated rhizosphere microbiomes, which, in turn, could be involved in the adaptation of plants to these environmental stresses. Rhizosphere soil was collected from a three-factor pot experiment, where pea line SGE and its Cd-tolerant mutant SGECd(t) were cultivated under both optimal and limited water conditions and treated with a toxic Cd concentration. The taxonomic structure of the prokaryotic rhizosphere microbiome was analyzed with the high-throughput sequencing of 16S rRNA amplicon libraries. A permutation test demonstrated statistically significant effects of Cd and water stress but not of pea genotype on the rhizosphere microbiome structure. Phylogenetic isometric log-ratio data transformation identified the taxonomic balances that were affected by abiotic factors and pea genotypes. A small number of significant (log ratio [−3.0:+3.0]) and phylogenetically deep balances characterized water stress, while a larger number of weak (log ratio [−0.8:+0.8]) phylogenetically lower balances described the influence of the plant genotype. Stress caused by cadmium took on an intermediate position. The main conclusion of the study is that the most powerful factor affecting the rhizosphere microbiome was water stress, and the weakest factor was plant genotype since it demonstrated a very weak transformation of the taxonomic structure of rhizosphere microbiomes in terms of alpha diversity indices, beta diversity, and the log ratio values of taxonomic balances.
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spelling pubmed-96996162022-11-26 Water Stress, Cadmium, and Plant Genotype Modulate the Rhizosphere Microbiome of Pisum sativum L. Kichko, Arina A. Gladkov, Grigory V. Ulianich, Pavel S. Safronova, Vera I. Pinaev, Alexander G. Sekste, Edgar A. Belimov, Andrey A. Andronov, Evgeny E. Plants (Basel) Article Drought and heavy metals seriously affect plant growth and the biodiversity of the associated rhizosphere microbiomes, which, in turn, could be involved in the adaptation of plants to these environmental stresses. Rhizosphere soil was collected from a three-factor pot experiment, where pea line SGE and its Cd-tolerant mutant SGECd(t) were cultivated under both optimal and limited water conditions and treated with a toxic Cd concentration. The taxonomic structure of the prokaryotic rhizosphere microbiome was analyzed with the high-throughput sequencing of 16S rRNA amplicon libraries. A permutation test demonstrated statistically significant effects of Cd and water stress but not of pea genotype on the rhizosphere microbiome structure. Phylogenetic isometric log-ratio data transformation identified the taxonomic balances that were affected by abiotic factors and pea genotypes. A small number of significant (log ratio [−3.0:+3.0]) and phylogenetically deep balances characterized water stress, while a larger number of weak (log ratio [−0.8:+0.8]) phylogenetically lower balances described the influence of the plant genotype. Stress caused by cadmium took on an intermediate position. The main conclusion of the study is that the most powerful factor affecting the rhizosphere microbiome was water stress, and the weakest factor was plant genotype since it demonstrated a very weak transformation of the taxonomic structure of rhizosphere microbiomes in terms of alpha diversity indices, beta diversity, and the log ratio values of taxonomic balances. MDPI 2022-11-08 /pmc/articles/PMC9699616/ /pubmed/36432739 http://dx.doi.org/10.3390/plants11223013 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kichko, Arina A.
Gladkov, Grigory V.
Ulianich, Pavel S.
Safronova, Vera I.
Pinaev, Alexander G.
Sekste, Edgar A.
Belimov, Andrey A.
Andronov, Evgeny E.
Water Stress, Cadmium, and Plant Genotype Modulate the Rhizosphere Microbiome of Pisum sativum L.
title Water Stress, Cadmium, and Plant Genotype Modulate the Rhizosphere Microbiome of Pisum sativum L.
title_full Water Stress, Cadmium, and Plant Genotype Modulate the Rhizosphere Microbiome of Pisum sativum L.
title_fullStr Water Stress, Cadmium, and Plant Genotype Modulate the Rhizosphere Microbiome of Pisum sativum L.
title_full_unstemmed Water Stress, Cadmium, and Plant Genotype Modulate the Rhizosphere Microbiome of Pisum sativum L.
title_short Water Stress, Cadmium, and Plant Genotype Modulate the Rhizosphere Microbiome of Pisum sativum L.
title_sort water stress, cadmium, and plant genotype modulate the rhizosphere microbiome of pisum sativum l.
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9699616/
https://www.ncbi.nlm.nih.gov/pubmed/36432739
http://dx.doi.org/10.3390/plants11223013
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