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Inhibition of Bacterial Adhesion and Biofilm Formation by Seed-Derived Ethanol Extracts from Persea americana Mill

The increase in antibiotic resistance demands innovative strategies to combat microorganisms. The current study evaluated the antibacterial and antivirulence effects of ethanol extracts from Persea americana seeds obtained by the Soxhlet (SE) and maceration (MaE) methods. The UHPLC-DAD-QTOF analysis...

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Autores principales: Molina Bertrán, Silvia del Carmen, Monzote, Lianet, Cappoen, Davie, Escalona Arranz, Julio Cesar, Gordillo Pérez, Mario Juan, Rodríguez-Ferreiro, Annarli O., Chill Nuñez, Idelsy, Novo, Claudina Pérez, Méndez, Daniel, Cos, Paul, Llauradó Maury, Gabriel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9370132/
https://www.ncbi.nlm.nih.gov/pubmed/35956958
http://dx.doi.org/10.3390/molecules27155009
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author Molina Bertrán, Silvia del Carmen
Monzote, Lianet
Cappoen, Davie
Escalona Arranz, Julio Cesar
Gordillo Pérez, Mario Juan
Rodríguez-Ferreiro, Annarli O.
Chill Nuñez, Idelsy
Novo, Claudina Pérez
Méndez, Daniel
Cos, Paul
Llauradó Maury, Gabriel
author_facet Molina Bertrán, Silvia del Carmen
Monzote, Lianet
Cappoen, Davie
Escalona Arranz, Julio Cesar
Gordillo Pérez, Mario Juan
Rodríguez-Ferreiro, Annarli O.
Chill Nuñez, Idelsy
Novo, Claudina Pérez
Méndez, Daniel
Cos, Paul
Llauradó Maury, Gabriel
author_sort Molina Bertrán, Silvia del Carmen
collection PubMed
description The increase in antibiotic resistance demands innovative strategies to combat microorganisms. The current study evaluated the antibacterial and antivirulence effects of ethanol extracts from Persea americana seeds obtained by the Soxhlet (SE) and maceration (MaE) methods. The UHPLC-DAD-QTOF analysis showed mainly the presence of polyphenols and neolignan. Ethanol extracts were not cytotoxic to mammalian cells (CC(50) > 500 µg/mL) and displayed a moderate antibacterial activity against Pseudomonas aeruginosa (IC(50) = 87 and 187 µg/mL) and Staphylococcus aureus (IC(50) = 144 and 159 µg/mL). Interestingly, no antibacterial activity was found against Escherichia coli. SE and MaE extracts were also able to significantly reduce the bacterial adhesion to A549 lung epithelial cells. Additionally, both extracts inhibited the biofilm growth at 24 h and facilitated the release of internal cell components in P. aeruginosa, which might be associated with cell membrane destabilization. Real-time PCR and agarose electrophoresis gel analysis indicated that avocado seed ethanol extracts (64 µg/mL) downregulated virulence-related factors such as mexT and lasA genes. Our results support the potential of bioproducts from P. americana seeds as anti-adhesive and anti-biofilm agents.
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spelling pubmed-93701322022-08-12 Inhibition of Bacterial Adhesion and Biofilm Formation by Seed-Derived Ethanol Extracts from Persea americana Mill Molina Bertrán, Silvia del Carmen Monzote, Lianet Cappoen, Davie Escalona Arranz, Julio Cesar Gordillo Pérez, Mario Juan Rodríguez-Ferreiro, Annarli O. Chill Nuñez, Idelsy Novo, Claudina Pérez Méndez, Daniel Cos, Paul Llauradó Maury, Gabriel Molecules Article The increase in antibiotic resistance demands innovative strategies to combat microorganisms. The current study evaluated the antibacterial and antivirulence effects of ethanol extracts from Persea americana seeds obtained by the Soxhlet (SE) and maceration (MaE) methods. The UHPLC-DAD-QTOF analysis showed mainly the presence of polyphenols and neolignan. Ethanol extracts were not cytotoxic to mammalian cells (CC(50) > 500 µg/mL) and displayed a moderate antibacterial activity against Pseudomonas aeruginosa (IC(50) = 87 and 187 µg/mL) and Staphylococcus aureus (IC(50) = 144 and 159 µg/mL). Interestingly, no antibacterial activity was found against Escherichia coli. SE and MaE extracts were also able to significantly reduce the bacterial adhesion to A549 lung epithelial cells. Additionally, both extracts inhibited the biofilm growth at 24 h and facilitated the release of internal cell components in P. aeruginosa, which might be associated with cell membrane destabilization. Real-time PCR and agarose electrophoresis gel analysis indicated that avocado seed ethanol extracts (64 µg/mL) downregulated virulence-related factors such as mexT and lasA genes. Our results support the potential of bioproducts from P. americana seeds as anti-adhesive and anti-biofilm agents. MDPI 2022-08-06 /pmc/articles/PMC9370132/ /pubmed/35956958 http://dx.doi.org/10.3390/molecules27155009 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
Molina Bertrán, Silvia del Carmen
Monzote, Lianet
Cappoen, Davie
Escalona Arranz, Julio Cesar
Gordillo Pérez, Mario Juan
Rodríguez-Ferreiro, Annarli O.
Chill Nuñez, Idelsy
Novo, Claudina Pérez
Méndez, Daniel
Cos, Paul
Llauradó Maury, Gabriel
Inhibition of Bacterial Adhesion and Biofilm Formation by Seed-Derived Ethanol Extracts from Persea americana Mill
title Inhibition of Bacterial Adhesion and Biofilm Formation by Seed-Derived Ethanol Extracts from Persea americana Mill
title_full Inhibition of Bacterial Adhesion and Biofilm Formation by Seed-Derived Ethanol Extracts from Persea americana Mill
title_fullStr Inhibition of Bacterial Adhesion and Biofilm Formation by Seed-Derived Ethanol Extracts from Persea americana Mill
title_full_unstemmed Inhibition of Bacterial Adhesion and Biofilm Formation by Seed-Derived Ethanol Extracts from Persea americana Mill
title_short Inhibition of Bacterial Adhesion and Biofilm Formation by Seed-Derived Ethanol Extracts from Persea americana Mill
title_sort inhibition of bacterial adhesion and biofilm formation by seed-derived ethanol extracts from persea americana mill
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9370132/
https://www.ncbi.nlm.nih.gov/pubmed/35956958
http://dx.doi.org/10.3390/molecules27155009
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