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Discovery of Pyrrolidine-2,3-diones as Novel Inhibitors of P. aeruginosa PBP3

The alarming threat of the spread of multidrug resistant bacteria currently leaves clinicians with very limited options to combat infections, especially those from Gram-negative bacteria. Hence, innovative strategies to deliver the next generation of antibacterials are urgently needed. Penicillin bi...

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Autores principales: López-Pérez, Arancha, Freischem, Stefan, Grimm, Immanuel, Weiergräber, Oliver, Dingley, Andrew J., López-Alberca, María Pascual, Waldmann, Herbert, Vollmer, Waldemar, Kumar, Kamal, Vuong, Cuong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8147781/
https://www.ncbi.nlm.nih.gov/pubmed/34064358
http://dx.doi.org/10.3390/antibiotics10050529
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author López-Pérez, Arancha
Freischem, Stefan
Grimm, Immanuel
Weiergräber, Oliver
Dingley, Andrew J.
López-Alberca, María Pascual
Waldmann, Herbert
Vollmer, Waldemar
Kumar, Kamal
Vuong, Cuong
author_facet López-Pérez, Arancha
Freischem, Stefan
Grimm, Immanuel
Weiergräber, Oliver
Dingley, Andrew J.
López-Alberca, María Pascual
Waldmann, Herbert
Vollmer, Waldemar
Kumar, Kamal
Vuong, Cuong
author_sort López-Pérez, Arancha
collection PubMed
description The alarming threat of the spread of multidrug resistant bacteria currently leaves clinicians with very limited options to combat infections, especially those from Gram-negative bacteria. Hence, innovative strategies to deliver the next generation of antibacterials are urgently needed. Penicillin binding proteins (PBPs) are proven targets inhibited by β-lactam antibiotics. To discover novel, non-β-lactam inhibitors against PBP3 of Pseudomonas aeruginosa, we optimised a fluorescence assay based on a well-known thioester artificial substrate and performed a target screening using a focused protease-targeted library of 2455 compounds, which led to the identification of pyrrolidine-2,3-dione as a potential scaffold to inhibit the PBP3 target. Further chemical optimisation using a one-pot three-component reaction protocol delivered compounds with excellent target inhibition, initial antibacterial activities against P. aeruginosa and no apparent cytotoxicity. Our investigation revealed the key structural features; for instance, 3-hydroxyl group (R(2)) and a heteroaryl group (R(1)) appended to the N-pyrroldine-2,3-dione via methylene linker required for target inhibition. Overall, the discovery of the pyrrolidine-2,3-dione class of inhibitors of PBP3 brings opportunities to target multidrug-resistant bacterial strains and calls for further optimisation to improve antibacterial activity against P. aeruginosa.
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spelling pubmed-81477812021-05-26 Discovery of Pyrrolidine-2,3-diones as Novel Inhibitors of P. aeruginosa PBP3 López-Pérez, Arancha Freischem, Stefan Grimm, Immanuel Weiergräber, Oliver Dingley, Andrew J. López-Alberca, María Pascual Waldmann, Herbert Vollmer, Waldemar Kumar, Kamal Vuong, Cuong Antibiotics (Basel) Article The alarming threat of the spread of multidrug resistant bacteria currently leaves clinicians with very limited options to combat infections, especially those from Gram-negative bacteria. Hence, innovative strategies to deliver the next generation of antibacterials are urgently needed. Penicillin binding proteins (PBPs) are proven targets inhibited by β-lactam antibiotics. To discover novel, non-β-lactam inhibitors against PBP3 of Pseudomonas aeruginosa, we optimised a fluorescence assay based on a well-known thioester artificial substrate and performed a target screening using a focused protease-targeted library of 2455 compounds, which led to the identification of pyrrolidine-2,3-dione as a potential scaffold to inhibit the PBP3 target. Further chemical optimisation using a one-pot three-component reaction protocol delivered compounds with excellent target inhibition, initial antibacterial activities against P. aeruginosa and no apparent cytotoxicity. Our investigation revealed the key structural features; for instance, 3-hydroxyl group (R(2)) and a heteroaryl group (R(1)) appended to the N-pyrroldine-2,3-dione via methylene linker required for target inhibition. Overall, the discovery of the pyrrolidine-2,3-dione class of inhibitors of PBP3 brings opportunities to target multidrug-resistant bacterial strains and calls for further optimisation to improve antibacterial activity against P. aeruginosa. MDPI 2021-05-04 /pmc/articles/PMC8147781/ /pubmed/34064358 http://dx.doi.org/10.3390/antibiotics10050529 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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
López-Pérez, Arancha
Freischem, Stefan
Grimm, Immanuel
Weiergräber, Oliver
Dingley, Andrew J.
López-Alberca, María Pascual
Waldmann, Herbert
Vollmer, Waldemar
Kumar, Kamal
Vuong, Cuong
Discovery of Pyrrolidine-2,3-diones as Novel Inhibitors of P. aeruginosa PBP3
title Discovery of Pyrrolidine-2,3-diones as Novel Inhibitors of P. aeruginosa PBP3
title_full Discovery of Pyrrolidine-2,3-diones as Novel Inhibitors of P. aeruginosa PBP3
title_fullStr Discovery of Pyrrolidine-2,3-diones as Novel Inhibitors of P. aeruginosa PBP3
title_full_unstemmed Discovery of Pyrrolidine-2,3-diones as Novel Inhibitors of P. aeruginosa PBP3
title_short Discovery of Pyrrolidine-2,3-diones as Novel Inhibitors of P. aeruginosa PBP3
title_sort discovery of pyrrolidine-2,3-diones as novel inhibitors of p. aeruginosa pbp3
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8147781/
https://www.ncbi.nlm.nih.gov/pubmed/34064358
http://dx.doi.org/10.3390/antibiotics10050529
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