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Exploring novel aryl/heteroaryl-isosteres of phenylthiazole against multidrug-resistant bacteria

Antimicrobial resistance has become a concern as a worldwide threat. A novel scaffold of phenylthiazoles was recently evaluated against multidrug-resistant Staphylococci to control the emergence and spread of antimicrobial resistance, showing good results. Several structural modifications are needed...

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Autores principales: Omara, Mariam, Hagras, Mohamed, Elsebaie, Mohamed M., Abutaleb, Nader S., Nour El-Din, Hanzada T., Mekhail, Maria O., Attia, Ahmed S., Seleem, Mohamed N., Sarg, Marwa T., Mayhoub, Abdelrahman S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10323310/
https://www.ncbi.nlm.nih.gov/pubmed/37425632
http://dx.doi.org/10.1039/d3ra02778c
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author Omara, Mariam
Hagras, Mohamed
Elsebaie, Mohamed M.
Abutaleb, Nader S.
Nour El-Din, Hanzada T.
Mekhail, Maria O.
Attia, Ahmed S.
Seleem, Mohamed N.
Sarg, Marwa T.
Mayhoub, Abdelrahman S.
author_facet Omara, Mariam
Hagras, Mohamed
Elsebaie, Mohamed M.
Abutaleb, Nader S.
Nour El-Din, Hanzada T.
Mekhail, Maria O.
Attia, Ahmed S.
Seleem, Mohamed N.
Sarg, Marwa T.
Mayhoub, Abdelrahman S.
author_sort Omara, Mariam
collection PubMed
description Antimicrobial resistance has become a concern as a worldwide threat. A novel scaffold of phenylthiazoles was recently evaluated against multidrug-resistant Staphylococci to control the emergence and spread of antimicrobial resistance, showing good results. Several structural modifications are needed based on the structure–activity relationships (SARs) of this new antibiotic class. Previous studies revealed the existence of two key structural features essential for the antibacterial activity, the guanidine head and lipophilic tail. In this study, a new series of twenty-three phenylthiazole derivatives were synthesized utilizing the Suzuki coupling reaction to explore the lipophilic part. The in vitro antibacterial activity was evaluated against a range of clinical isolates. The three most promising compounds, 7d, 15d and 17d, with potent MIC values against MRSA USA300 were selected for further antimicrobial evaluation. The tested compounds exhibited potent results against the tested MSSA, MRSA, and VRSA strains (concentration: 0.5 to 4 μg mL(−1)). Compound 15d inhibited MRSA USA400 at a concentration of 0.5 μg mL(−1) (one-fold more potent than vancomycin) and showed low MIC values against ten clinical isolates, including linezolid-resistant strain MRSA NRS119 and three vancomycin-resistant isolates VRSA 9/10/12. Moreover, compound 15d retained its potent antibacterial activity using the in vivo model by the burden reduction of MRSA USA300 in skin-infected mice. The tested compounds also showed good toxicity profiles and were found to be highly tolerable to Caco-2 cells at concentrations of up to 16 μg mL(−1), with 100% of the cells remaining viable.
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spelling pubmed-103233102023-07-07 Exploring novel aryl/heteroaryl-isosteres of phenylthiazole against multidrug-resistant bacteria Omara, Mariam Hagras, Mohamed Elsebaie, Mohamed M. Abutaleb, Nader S. Nour El-Din, Hanzada T. Mekhail, Maria O. Attia, Ahmed S. Seleem, Mohamed N. Sarg, Marwa T. Mayhoub, Abdelrahman S. RSC Adv Chemistry Antimicrobial resistance has become a concern as a worldwide threat. A novel scaffold of phenylthiazoles was recently evaluated against multidrug-resistant Staphylococci to control the emergence and spread of antimicrobial resistance, showing good results. Several structural modifications are needed based on the structure–activity relationships (SARs) of this new antibiotic class. Previous studies revealed the existence of two key structural features essential for the antibacterial activity, the guanidine head and lipophilic tail. In this study, a new series of twenty-three phenylthiazole derivatives were synthesized utilizing the Suzuki coupling reaction to explore the lipophilic part. The in vitro antibacterial activity was evaluated against a range of clinical isolates. The three most promising compounds, 7d, 15d and 17d, with potent MIC values against MRSA USA300 were selected for further antimicrobial evaluation. The tested compounds exhibited potent results against the tested MSSA, MRSA, and VRSA strains (concentration: 0.5 to 4 μg mL(−1)). Compound 15d inhibited MRSA USA400 at a concentration of 0.5 μg mL(−1) (one-fold more potent than vancomycin) and showed low MIC values against ten clinical isolates, including linezolid-resistant strain MRSA NRS119 and three vancomycin-resistant isolates VRSA 9/10/12. Moreover, compound 15d retained its potent antibacterial activity using the in vivo model by the burden reduction of MRSA USA300 in skin-infected mice. The tested compounds also showed good toxicity profiles and were found to be highly tolerable to Caco-2 cells at concentrations of up to 16 μg mL(−1), with 100% of the cells remaining viable. The Royal Society of Chemistry 2023-07-06 /pmc/articles/PMC10323310/ /pubmed/37425632 http://dx.doi.org/10.1039/d3ra02778c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Omara, Mariam
Hagras, Mohamed
Elsebaie, Mohamed M.
Abutaleb, Nader S.
Nour El-Din, Hanzada T.
Mekhail, Maria O.
Attia, Ahmed S.
Seleem, Mohamed N.
Sarg, Marwa T.
Mayhoub, Abdelrahman S.
Exploring novel aryl/heteroaryl-isosteres of phenylthiazole against multidrug-resistant bacteria
title Exploring novel aryl/heteroaryl-isosteres of phenylthiazole against multidrug-resistant bacteria
title_full Exploring novel aryl/heteroaryl-isosteres of phenylthiazole against multidrug-resistant bacteria
title_fullStr Exploring novel aryl/heteroaryl-isosteres of phenylthiazole against multidrug-resistant bacteria
title_full_unstemmed Exploring novel aryl/heteroaryl-isosteres of phenylthiazole against multidrug-resistant bacteria
title_short Exploring novel aryl/heteroaryl-isosteres of phenylthiazole against multidrug-resistant bacteria
title_sort exploring novel aryl/heteroaryl-isosteres of phenylthiazole against multidrug-resistant bacteria
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10323310/
https://www.ncbi.nlm.nih.gov/pubmed/37425632
http://dx.doi.org/10.1039/d3ra02778c
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