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Capsicumicine, a New Bioinspired Peptide from Red Peppers Prevents Staphylococcal Biofilm In Vitro and In Vivo via a Matrix Anti-Assembly Mechanism of Action

Staphylococci are pathogenic biofilm-forming bacteria and a source of multidrug resistance and/or tolerance causing a broad spectrum of infections. These bacteria are enclosed in a matrix that allows them to colonize medical devices, such as catheters and tissues, and that protects against antibioti...

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Autores principales: Gomes Von Borowski, Rafael, Chat, Sophie, Schneider, Rafael, Nonin-Lecomte, Sylvie, Bouaziz, Serge, Giudice, Emmanuel, Rigon Zimmer, Aline, Baggio Gnoatto, Simone Cristina, Macedo, Alexandre José, Gillet, Reynald
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8549733/
https://www.ncbi.nlm.nih.gov/pubmed/34704807
http://dx.doi.org/10.1128/Spectrum.00471-21
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author Gomes Von Borowski, Rafael
Chat, Sophie
Schneider, Rafael
Nonin-Lecomte, Sylvie
Bouaziz, Serge
Giudice, Emmanuel
Rigon Zimmer, Aline
Baggio Gnoatto, Simone Cristina
Macedo, Alexandre José
Gillet, Reynald
author_facet Gomes Von Borowski, Rafael
Chat, Sophie
Schneider, Rafael
Nonin-Lecomte, Sylvie
Bouaziz, Serge
Giudice, Emmanuel
Rigon Zimmer, Aline
Baggio Gnoatto, Simone Cristina
Macedo, Alexandre José
Gillet, Reynald
author_sort Gomes Von Borowski, Rafael
collection PubMed
description Staphylococci are pathogenic biofilm-forming bacteria and a source of multidrug resistance and/or tolerance causing a broad spectrum of infections. These bacteria are enclosed in a matrix that allows them to colonize medical devices, such as catheters and tissues, and that protects against antibiotics and immune systems. Advances in antibiofilm strategies for targeting this matrix are therefore extremely relevant. Here, we describe the development of the Capsicum pepper bioinspired peptide “capsicumicine.” By using microbiological, microscopic, and nuclear magnetic resonance (NMR) approaches, we demonstrate that capsicumicine strongly prevents methicillin-resistant Staphylococcus epidermidis biofilm via an extracellular “matrix anti-assembly” mechanism of action. The results were confirmed in vivo in a translational preclinical model that mimics medical device-related infection. Since capsicumicine is not cytotoxic, it is a promising candidate for complementary treatment of infectious diseases. IMPORTANCE Pathogenic biofilms are a global health care concern, as they can cause extensive antibiotic resistance, morbidity, mortality, and thereby substantial economic loss. So far, no effective treatments targeting the bacteria in biofilms have been developed. Plants are constantly attacked by a wide range of pathogens and have protective factors, such as peptides, to defend themselves. These peptides are common components in Capsicum baccatum (red pepper). Here, we provide insights into an antibiofilm strategy based on the development of capsicumicine, a natural peptide that strongly controls biofilm formation by Staphylococcus epidermidis, the most prevalent pathogen in device-related infections.
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spelling pubmed-85497332021-11-08 Capsicumicine, a New Bioinspired Peptide from Red Peppers Prevents Staphylococcal Biofilm In Vitro and In Vivo via a Matrix Anti-Assembly Mechanism of Action Gomes Von Borowski, Rafael Chat, Sophie Schneider, Rafael Nonin-Lecomte, Sylvie Bouaziz, Serge Giudice, Emmanuel Rigon Zimmer, Aline Baggio Gnoatto, Simone Cristina Macedo, Alexandre José Gillet, Reynald Microbiol Spectr Research Article Staphylococci are pathogenic biofilm-forming bacteria and a source of multidrug resistance and/or tolerance causing a broad spectrum of infections. These bacteria are enclosed in a matrix that allows them to colonize medical devices, such as catheters and tissues, and that protects against antibiotics and immune systems. Advances in antibiofilm strategies for targeting this matrix are therefore extremely relevant. Here, we describe the development of the Capsicum pepper bioinspired peptide “capsicumicine.” By using microbiological, microscopic, and nuclear magnetic resonance (NMR) approaches, we demonstrate that capsicumicine strongly prevents methicillin-resistant Staphylococcus epidermidis biofilm via an extracellular “matrix anti-assembly” mechanism of action. The results were confirmed in vivo in a translational preclinical model that mimics medical device-related infection. Since capsicumicine is not cytotoxic, it is a promising candidate for complementary treatment of infectious diseases. IMPORTANCE Pathogenic biofilms are a global health care concern, as they can cause extensive antibiotic resistance, morbidity, mortality, and thereby substantial economic loss. So far, no effective treatments targeting the bacteria in biofilms have been developed. Plants are constantly attacked by a wide range of pathogens and have protective factors, such as peptides, to defend themselves. These peptides are common components in Capsicum baccatum (red pepper). Here, we provide insights into an antibiofilm strategy based on the development of capsicumicine, a natural peptide that strongly controls biofilm formation by Staphylococcus epidermidis, the most prevalent pathogen in device-related infections. American Society for Microbiology 2021-10-27 /pmc/articles/PMC8549733/ /pubmed/34704807 http://dx.doi.org/10.1128/Spectrum.00471-21 Text en Copyright © 2021 Gomes Von Borowski et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Gomes Von Borowski, Rafael
Chat, Sophie
Schneider, Rafael
Nonin-Lecomte, Sylvie
Bouaziz, Serge
Giudice, Emmanuel
Rigon Zimmer, Aline
Baggio Gnoatto, Simone Cristina
Macedo, Alexandre José
Gillet, Reynald
Capsicumicine, a New Bioinspired Peptide from Red Peppers Prevents Staphylococcal Biofilm In Vitro and In Vivo via a Matrix Anti-Assembly Mechanism of Action
title Capsicumicine, a New Bioinspired Peptide from Red Peppers Prevents Staphylococcal Biofilm In Vitro and In Vivo via a Matrix Anti-Assembly Mechanism of Action
title_full Capsicumicine, a New Bioinspired Peptide from Red Peppers Prevents Staphylococcal Biofilm In Vitro and In Vivo via a Matrix Anti-Assembly Mechanism of Action
title_fullStr Capsicumicine, a New Bioinspired Peptide from Red Peppers Prevents Staphylococcal Biofilm In Vitro and In Vivo via a Matrix Anti-Assembly Mechanism of Action
title_full_unstemmed Capsicumicine, a New Bioinspired Peptide from Red Peppers Prevents Staphylococcal Biofilm In Vitro and In Vivo via a Matrix Anti-Assembly Mechanism of Action
title_short Capsicumicine, a New Bioinspired Peptide from Red Peppers Prevents Staphylococcal Biofilm In Vitro and In Vivo via a Matrix Anti-Assembly Mechanism of Action
title_sort capsicumicine, a new bioinspired peptide from red peppers prevents staphylococcal biofilm in vitro and in vivo via a matrix anti-assembly mechanism of action
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8549733/
https://www.ncbi.nlm.nih.gov/pubmed/34704807
http://dx.doi.org/10.1128/Spectrum.00471-21
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