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Fullerol C(60)(OH)(24) Nanoparticles and Drought Impact on Wheat (Triticum aestivum L.) during Growth and Infection with Aspergillus flavus

Fullerol C(60)(OH)(24) nanoparticles (FNP)-wheat-A. flavus interaction outcome is more complicated in the presence of drought. This study sheds light on how the presence of FNP affects food and feed safety from the perspective of mycotoxin contamination. The study aims to determine the influence of...

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Autores principales: Kovač, Tihomir, Marček, Tihana, Šarkanj, Bojan, Borišev, Ivana, Ižaković, Maja, Jukić, Katarina, Lončarić, Ante, Krska, Tamara, Sulyok, Michael, Krska, Rudolf
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8004204/
https://www.ncbi.nlm.nih.gov/pubmed/33809896
http://dx.doi.org/10.3390/jof7030236
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author Kovač, Tihomir
Marček, Tihana
Šarkanj, Bojan
Borišev, Ivana
Ižaković, Maja
Jukić, Katarina
Lončarić, Ante
Krska, Tamara
Sulyok, Michael
Krska, Rudolf
author_facet Kovač, Tihomir
Marček, Tihana
Šarkanj, Bojan
Borišev, Ivana
Ižaković, Maja
Jukić, Katarina
Lončarić, Ante
Krska, Tamara
Sulyok, Michael
Krska, Rudolf
author_sort Kovač, Tihomir
collection PubMed
description Fullerol C(60)(OH)(24) nanoparticles (FNP)-wheat-A. flavus interaction outcome is more complicated in the presence of drought. This study sheds light on how the presence of FNP affects food and feed safety from the perspective of mycotoxin contamination. The study aims to determine the influence of FNP at environmentally plausible concentrations on wheat growth under drought stress and on the aggressiveness of A. flavus during wheat germination, as well as the influence of FNP on the secondary metabolite profile during the inappropriate wheat storage. The co-occurrence of drought and FNP inhibited germination and shoot growth, while an application of FNP alone had no negative effect on plant growth. Wheat pre-treated with FNP showed a concentration dependent resistance pattern to A. flavus aggressiveness. Nevertheless, using a LC-MS/MS based multi-mycotoxin method, six secondary fungal metabolites: 3-nitropropionic acid (<LOD −775.7336 ± 10.7752 ng mL(−1)), aflatoxin B1 (<LOD −6.78 ± 0.43 ng mL(−1)) and B2 (<LOD −0.07 ± 0.00 ng mL(−1)), aflatoxicol (<LOD −0.37 ± 0.16 ng mL(−1)), kojic acid (<LOD −1337.87 ± 189.04 ng mL(−1)), and O-methylsterigmatocystin (<LOD −0.17 ± 0.00 ng mL(−1)), were detected. FNP affected secondary metabolism of A. flavus during inappropriate wheat storage and increased the concentration of secondary metabolites in a concentration-dependent pattern (3-nitropropionic acid and kojic acid). In addition, aflatoxicol production was provoked in FNP treated samples.
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spelling pubmed-80042042021-03-28 Fullerol C(60)(OH)(24) Nanoparticles and Drought Impact on Wheat (Triticum aestivum L.) during Growth and Infection with Aspergillus flavus Kovač, Tihomir Marček, Tihana Šarkanj, Bojan Borišev, Ivana Ižaković, Maja Jukić, Katarina Lončarić, Ante Krska, Tamara Sulyok, Michael Krska, Rudolf J Fungi (Basel) Article Fullerol C(60)(OH)(24) nanoparticles (FNP)-wheat-A. flavus interaction outcome is more complicated in the presence of drought. This study sheds light on how the presence of FNP affects food and feed safety from the perspective of mycotoxin contamination. The study aims to determine the influence of FNP at environmentally plausible concentrations on wheat growth under drought stress and on the aggressiveness of A. flavus during wheat germination, as well as the influence of FNP on the secondary metabolite profile during the inappropriate wheat storage. The co-occurrence of drought and FNP inhibited germination and shoot growth, while an application of FNP alone had no negative effect on plant growth. Wheat pre-treated with FNP showed a concentration dependent resistance pattern to A. flavus aggressiveness. Nevertheless, using a LC-MS/MS based multi-mycotoxin method, six secondary fungal metabolites: 3-nitropropionic acid (<LOD −775.7336 ± 10.7752 ng mL(−1)), aflatoxin B1 (<LOD −6.78 ± 0.43 ng mL(−1)) and B2 (<LOD −0.07 ± 0.00 ng mL(−1)), aflatoxicol (<LOD −0.37 ± 0.16 ng mL(−1)), kojic acid (<LOD −1337.87 ± 189.04 ng mL(−1)), and O-methylsterigmatocystin (<LOD −0.17 ± 0.00 ng mL(−1)), were detected. FNP affected secondary metabolism of A. flavus during inappropriate wheat storage and increased the concentration of secondary metabolites in a concentration-dependent pattern (3-nitropropionic acid and kojic acid). In addition, aflatoxicol production was provoked in FNP treated samples. MDPI 2021-03-22 /pmc/articles/PMC8004204/ /pubmed/33809896 http://dx.doi.org/10.3390/jof7030236 Text en © 2021 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 (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ).
spellingShingle Article
Kovač, Tihomir
Marček, Tihana
Šarkanj, Bojan
Borišev, Ivana
Ižaković, Maja
Jukić, Katarina
Lončarić, Ante
Krska, Tamara
Sulyok, Michael
Krska, Rudolf
Fullerol C(60)(OH)(24) Nanoparticles and Drought Impact on Wheat (Triticum aestivum L.) during Growth and Infection with Aspergillus flavus
title Fullerol C(60)(OH)(24) Nanoparticles and Drought Impact on Wheat (Triticum aestivum L.) during Growth and Infection with Aspergillus flavus
title_full Fullerol C(60)(OH)(24) Nanoparticles and Drought Impact on Wheat (Triticum aestivum L.) during Growth and Infection with Aspergillus flavus
title_fullStr Fullerol C(60)(OH)(24) Nanoparticles and Drought Impact on Wheat (Triticum aestivum L.) during Growth and Infection with Aspergillus flavus
title_full_unstemmed Fullerol C(60)(OH)(24) Nanoparticles and Drought Impact on Wheat (Triticum aestivum L.) during Growth and Infection with Aspergillus flavus
title_short Fullerol C(60)(OH)(24) Nanoparticles and Drought Impact on Wheat (Triticum aestivum L.) during Growth and Infection with Aspergillus flavus
title_sort fullerol c(60)(oh)(24) nanoparticles and drought impact on wheat (triticum aestivum l.) during growth and infection with aspergillus flavus
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8004204/
https://www.ncbi.nlm.nih.gov/pubmed/33809896
http://dx.doi.org/10.3390/jof7030236
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