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A Metabolomic Approach to Assess the Toxicity of the Olive Tree Endophyte Bacillus sp. PTA13 Lipopeptides to the Aquatic Macrophyte Lemna minor L.

Pesticides represent a major human input into the ecosystem, posing a serious risk to non-target organisms. Therefore, there is pressure toward the reduction in their use and the discovery of alternative sources of bioactivity. Endophytic microorganisms represent a source of bioactivity, whose poten...

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Autores principales: Papadopoulou, Evgenia-Anna, Giaki, Katerina, Angelis, Apostolis, Skaltsounis, Alexios-Leandros, Aliferis, Konstantinos A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9505422/
https://www.ncbi.nlm.nih.gov/pubmed/36136459
http://dx.doi.org/10.3390/toxics10090494
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author Papadopoulou, Evgenia-Anna
Giaki, Katerina
Angelis, Apostolis
Skaltsounis, Alexios-Leandros
Aliferis, Konstantinos A.
author_facet Papadopoulou, Evgenia-Anna
Giaki, Katerina
Angelis, Apostolis
Skaltsounis, Alexios-Leandros
Aliferis, Konstantinos A.
author_sort Papadopoulou, Evgenia-Anna
collection PubMed
description Pesticides represent a major human input into the ecosystem, posing a serious risk to non-target organisms. Therefore, there is pressure toward the reduction in their use and the discovery of alternative sources of bioactivity. Endophytic microorganisms represent a source of bioactivity, whose potential for plant protection has been recently established. In this context, an olive tree endophytic Bacillus sp. was isolated, exhibiting superior antifungal activity, mainly attributed to its major surfactin, iturin, and fengycin and the minor gageotetrin and bacilotetrin groups of lipopeptides (LP). Based on the potential of LP and the lack of information on their toxicity to aquatic organisms, we have investigated the toxicity of an LP extract to the model macrophyte Lemna minor L. The extract exhibited low phytotoxicity (EC(50) = 419 μg·mL(−1)), and for the investigation of its effect on the plant, GC/EI/MS metabolomics was applied following exposure to sub-lethal doses (EC(25) and EC(50)). Results revealed a general disturbance of plants’ biosynthetic capacity in response to LP treatments, with substantial effect on the amino acid pool and the defense mechanism regulated by jasmonate. There are no previous reports on the phytotoxicity of LP to L. minor, with evidence supporting their improved toxicological profile and potential in plant protection.
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spelling pubmed-95054222022-09-24 A Metabolomic Approach to Assess the Toxicity of the Olive Tree Endophyte Bacillus sp. PTA13 Lipopeptides to the Aquatic Macrophyte Lemna minor L. Papadopoulou, Evgenia-Anna Giaki, Katerina Angelis, Apostolis Skaltsounis, Alexios-Leandros Aliferis, Konstantinos A. Toxics Article Pesticides represent a major human input into the ecosystem, posing a serious risk to non-target organisms. Therefore, there is pressure toward the reduction in their use and the discovery of alternative sources of bioactivity. Endophytic microorganisms represent a source of bioactivity, whose potential for plant protection has been recently established. In this context, an olive tree endophytic Bacillus sp. was isolated, exhibiting superior antifungal activity, mainly attributed to its major surfactin, iturin, and fengycin and the minor gageotetrin and bacilotetrin groups of lipopeptides (LP). Based on the potential of LP and the lack of information on their toxicity to aquatic organisms, we have investigated the toxicity of an LP extract to the model macrophyte Lemna minor L. The extract exhibited low phytotoxicity (EC(50) = 419 μg·mL(−1)), and for the investigation of its effect on the plant, GC/EI/MS metabolomics was applied following exposure to sub-lethal doses (EC(25) and EC(50)). Results revealed a general disturbance of plants’ biosynthetic capacity in response to LP treatments, with substantial effect on the amino acid pool and the defense mechanism regulated by jasmonate. There are no previous reports on the phytotoxicity of LP to L. minor, with evidence supporting their improved toxicological profile and potential in plant protection. MDPI 2022-08-25 /pmc/articles/PMC9505422/ /pubmed/36136459 http://dx.doi.org/10.3390/toxics10090494 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
Papadopoulou, Evgenia-Anna
Giaki, Katerina
Angelis, Apostolis
Skaltsounis, Alexios-Leandros
Aliferis, Konstantinos A.
A Metabolomic Approach to Assess the Toxicity of the Olive Tree Endophyte Bacillus sp. PTA13 Lipopeptides to the Aquatic Macrophyte Lemna minor L.
title A Metabolomic Approach to Assess the Toxicity of the Olive Tree Endophyte Bacillus sp. PTA13 Lipopeptides to the Aquatic Macrophyte Lemna minor L.
title_full A Metabolomic Approach to Assess the Toxicity of the Olive Tree Endophyte Bacillus sp. PTA13 Lipopeptides to the Aquatic Macrophyte Lemna minor L.
title_fullStr A Metabolomic Approach to Assess the Toxicity of the Olive Tree Endophyte Bacillus sp. PTA13 Lipopeptides to the Aquatic Macrophyte Lemna minor L.
title_full_unstemmed A Metabolomic Approach to Assess the Toxicity of the Olive Tree Endophyte Bacillus sp. PTA13 Lipopeptides to the Aquatic Macrophyte Lemna minor L.
title_short A Metabolomic Approach to Assess the Toxicity of the Olive Tree Endophyte Bacillus sp. PTA13 Lipopeptides to the Aquatic Macrophyte Lemna minor L.
title_sort metabolomic approach to assess the toxicity of the olive tree endophyte bacillus sp. pta13 lipopeptides to the aquatic macrophyte lemna minor l.
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9505422/
https://www.ncbi.nlm.nih.gov/pubmed/36136459
http://dx.doi.org/10.3390/toxics10090494
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