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N-methyl Benzimidazole Tethered Cholic Acid Amphiphiles Can Eradicate S. aureus-Mediated Biofilms and Wound Infections

Infections associated with Gram-positive bacteria like S. aureus pose a major threat as these bacteria can develop resistance and thereby limit the applications of antibiotics. Therefore, there is a need for new antibacterials to mitigate these infections. Bacterial membranes present an attractive t...

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Autores principales: Kakkar, Himanshu, Chaudhary, Nalini, Mehta, Devashish, Saini, Varsha, Maheshwari, Shallu, Singh, Jitender, Walia, Preeti, Bajaj, Avinash
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9182351/
https://www.ncbi.nlm.nih.gov/pubmed/35684439
http://dx.doi.org/10.3390/molecules27113501
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author Kakkar, Himanshu
Chaudhary, Nalini
Mehta, Devashish
Saini, Varsha
Maheshwari, Shallu
Singh, Jitender
Walia, Preeti
Bajaj, Avinash
author_facet Kakkar, Himanshu
Chaudhary, Nalini
Mehta, Devashish
Saini, Varsha
Maheshwari, Shallu
Singh, Jitender
Walia, Preeti
Bajaj, Avinash
author_sort Kakkar, Himanshu
collection PubMed
description Infections associated with Gram-positive bacteria like S. aureus pose a major threat as these bacteria can develop resistance and thereby limit the applications of antibiotics. Therefore, there is a need for new antibacterials to mitigate these infections. Bacterial membranes present an attractive therapeutic target as these membranes are anionic in nature and have a low chance of developing modifications in their physicochemical features. Antimicrobial peptides (AMPs) can disrupt the microbial membranes via electrostatic interactions, but the poor stability of AMPs halts their clinical translation. Here, we present the synthesis of eight N-methyl benzimidazole substituted cholic acid amphiphiles as antibacterial agents. We screened these novel heterocyclic cholic acid amphiphiles against different pathogens. Among the series, CABI-6 outperformed the other amphiphiles in terms of bactericidal activity against S. aureus. The membrane disruptive property of CABI-6 using a fluorescence-based assay has also been investigated, and it was inferred that CABI-6 can enhance the production of reactive oxygen species. We further demonstrated that CABI-6 can clear the pre-formed biofilms and can mitigate wound infection in murine models.
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spelling pubmed-91823512022-06-10 N-methyl Benzimidazole Tethered Cholic Acid Amphiphiles Can Eradicate S. aureus-Mediated Biofilms and Wound Infections Kakkar, Himanshu Chaudhary, Nalini Mehta, Devashish Saini, Varsha Maheshwari, Shallu Singh, Jitender Walia, Preeti Bajaj, Avinash Molecules Article Infections associated with Gram-positive bacteria like S. aureus pose a major threat as these bacteria can develop resistance and thereby limit the applications of antibiotics. Therefore, there is a need for new antibacterials to mitigate these infections. Bacterial membranes present an attractive therapeutic target as these membranes are anionic in nature and have a low chance of developing modifications in their physicochemical features. Antimicrobial peptides (AMPs) can disrupt the microbial membranes via electrostatic interactions, but the poor stability of AMPs halts their clinical translation. Here, we present the synthesis of eight N-methyl benzimidazole substituted cholic acid amphiphiles as antibacterial agents. We screened these novel heterocyclic cholic acid amphiphiles against different pathogens. Among the series, CABI-6 outperformed the other amphiphiles in terms of bactericidal activity against S. aureus. The membrane disruptive property of CABI-6 using a fluorescence-based assay has also been investigated, and it was inferred that CABI-6 can enhance the production of reactive oxygen species. We further demonstrated that CABI-6 can clear the pre-formed biofilms and can mitigate wound infection in murine models. MDPI 2022-05-30 /pmc/articles/PMC9182351/ /pubmed/35684439 http://dx.doi.org/10.3390/molecules27113501 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
Kakkar, Himanshu
Chaudhary, Nalini
Mehta, Devashish
Saini, Varsha
Maheshwari, Shallu
Singh, Jitender
Walia, Preeti
Bajaj, Avinash
N-methyl Benzimidazole Tethered Cholic Acid Amphiphiles Can Eradicate S. aureus-Mediated Biofilms and Wound Infections
title N-methyl Benzimidazole Tethered Cholic Acid Amphiphiles Can Eradicate S. aureus-Mediated Biofilms and Wound Infections
title_full N-methyl Benzimidazole Tethered Cholic Acid Amphiphiles Can Eradicate S. aureus-Mediated Biofilms and Wound Infections
title_fullStr N-methyl Benzimidazole Tethered Cholic Acid Amphiphiles Can Eradicate S. aureus-Mediated Biofilms and Wound Infections
title_full_unstemmed N-methyl Benzimidazole Tethered Cholic Acid Amphiphiles Can Eradicate S. aureus-Mediated Biofilms and Wound Infections
title_short N-methyl Benzimidazole Tethered Cholic Acid Amphiphiles Can Eradicate S. aureus-Mediated Biofilms and Wound Infections
title_sort n-methyl benzimidazole tethered cholic acid amphiphiles can eradicate s. aureus-mediated biofilms and wound infections
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9182351/
https://www.ncbi.nlm.nih.gov/pubmed/35684439
http://dx.doi.org/10.3390/molecules27113501
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