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Investigating the Mechanism of Action of Diketopiperazines Inhibitors of the Burkholderia cenocepacia Quorum Sensing Synthase CepI: A Site-Directed Mutagenesis Study

Quorum sensing (QS) is a bacterial intercellular communication process which controls the production of major virulence factors, such as proteases, siderophores, and toxins, as well as biofilm formation. Since the inhibition of this pathway reduces bacterial virulence, QS is considered a valuable ca...

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Autores principales: Buroni, Silvia, Scoffone, Viola C., Fumagalli, Marco, Makarov, Vadim, Cagnone, Maddalena, Trespidi, Gabriele, De Rossi, Edda, Forneris, Federico, Riccardi, Giovanna, Chiarelli, Laurent R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6079302/
https://www.ncbi.nlm.nih.gov/pubmed/30108505
http://dx.doi.org/10.3389/fphar.2018.00836
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author Buroni, Silvia
Scoffone, Viola C.
Fumagalli, Marco
Makarov, Vadim
Cagnone, Maddalena
Trespidi, Gabriele
De Rossi, Edda
Forneris, Federico
Riccardi, Giovanna
Chiarelli, Laurent R.
author_facet Buroni, Silvia
Scoffone, Viola C.
Fumagalli, Marco
Makarov, Vadim
Cagnone, Maddalena
Trespidi, Gabriele
De Rossi, Edda
Forneris, Federico
Riccardi, Giovanna
Chiarelli, Laurent R.
author_sort Buroni, Silvia
collection PubMed
description Quorum sensing (QS) is a bacterial intercellular communication process which controls the production of major virulence factors, such as proteases, siderophores, and toxins, as well as biofilm formation. Since the inhibition of this pathway reduces bacterial virulence, QS is considered a valuable candidate drug target, particularly for the treatment of opportunistic infections, such as those caused by Burkholderia cenocepacia in cystic fibrosis patients. Diketopiperazine inhibitors of the acyl homoserine lactone synthase CepI have been recently described. These compounds are able to impair the ability of B. cenocepacia to produce proteases, siderophores, and to form biofilm, being also active in a Caenorhabditis elegans infection model. However, the precise mechanism of action of the compounds, as well as their effect on the cell metabolism, fundamental for candidate drug optimization, are still not completely defined. Here, we performed a proteomic analysis of B. cenocepacia cells treated with one of these inhibitors, and compared it with a cepI deleted strain. Our results demonstrate that the effects of the compound are similar to the deletion of cepI, clearly confirming that these molecules function as inhibitors of the acyl homoserine lactone synthase. Moreover, to deepen our knowledge about the binding mechanisms of the compound to CepI, we exploited previously published in silico structural insights about this enzyme structure and validated different candidate binding pockets on the enzyme surface using site-directed mutagenesis and biochemical analyses. Our experiments identified a region near the predicted S-adenosylmethionine binding site critically involved in interactions with the inhibitor. These results could be useful for future structure-based optimization of these CepI inhibitors.
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spelling pubmed-60793022018-08-14 Investigating the Mechanism of Action of Diketopiperazines Inhibitors of the Burkholderia cenocepacia Quorum Sensing Synthase CepI: A Site-Directed Mutagenesis Study Buroni, Silvia Scoffone, Viola C. Fumagalli, Marco Makarov, Vadim Cagnone, Maddalena Trespidi, Gabriele De Rossi, Edda Forneris, Federico Riccardi, Giovanna Chiarelli, Laurent R. Front Pharmacol Pharmacology Quorum sensing (QS) is a bacterial intercellular communication process which controls the production of major virulence factors, such as proteases, siderophores, and toxins, as well as biofilm formation. Since the inhibition of this pathway reduces bacterial virulence, QS is considered a valuable candidate drug target, particularly for the treatment of opportunistic infections, such as those caused by Burkholderia cenocepacia in cystic fibrosis patients. Diketopiperazine inhibitors of the acyl homoserine lactone synthase CepI have been recently described. These compounds are able to impair the ability of B. cenocepacia to produce proteases, siderophores, and to form biofilm, being also active in a Caenorhabditis elegans infection model. However, the precise mechanism of action of the compounds, as well as their effect on the cell metabolism, fundamental for candidate drug optimization, are still not completely defined. Here, we performed a proteomic analysis of B. cenocepacia cells treated with one of these inhibitors, and compared it with a cepI deleted strain. Our results demonstrate that the effects of the compound are similar to the deletion of cepI, clearly confirming that these molecules function as inhibitors of the acyl homoserine lactone synthase. Moreover, to deepen our knowledge about the binding mechanisms of the compound to CepI, we exploited previously published in silico structural insights about this enzyme structure and validated different candidate binding pockets on the enzyme surface using site-directed mutagenesis and biochemical analyses. Our experiments identified a region near the predicted S-adenosylmethionine binding site critically involved in interactions with the inhibitor. These results could be useful for future structure-based optimization of these CepI inhibitors. Frontiers Media S.A. 2018-07-31 /pmc/articles/PMC6079302/ /pubmed/30108505 http://dx.doi.org/10.3389/fphar.2018.00836 Text en Copyright © 2018 Buroni, Scoffone, Fumagalli, Makarov, Cagnone, Trespidi, De Rossi, Forneris, Riccardi and Chiarelli. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Pharmacology
Buroni, Silvia
Scoffone, Viola C.
Fumagalli, Marco
Makarov, Vadim
Cagnone, Maddalena
Trespidi, Gabriele
De Rossi, Edda
Forneris, Federico
Riccardi, Giovanna
Chiarelli, Laurent R.
Investigating the Mechanism of Action of Diketopiperazines Inhibitors of the Burkholderia cenocepacia Quorum Sensing Synthase CepI: A Site-Directed Mutagenesis Study
title Investigating the Mechanism of Action of Diketopiperazines Inhibitors of the Burkholderia cenocepacia Quorum Sensing Synthase CepI: A Site-Directed Mutagenesis Study
title_full Investigating the Mechanism of Action of Diketopiperazines Inhibitors of the Burkholderia cenocepacia Quorum Sensing Synthase CepI: A Site-Directed Mutagenesis Study
title_fullStr Investigating the Mechanism of Action of Diketopiperazines Inhibitors of the Burkholderia cenocepacia Quorum Sensing Synthase CepI: A Site-Directed Mutagenesis Study
title_full_unstemmed Investigating the Mechanism of Action of Diketopiperazines Inhibitors of the Burkholderia cenocepacia Quorum Sensing Synthase CepI: A Site-Directed Mutagenesis Study
title_short Investigating the Mechanism of Action of Diketopiperazines Inhibitors of the Burkholderia cenocepacia Quorum Sensing Synthase CepI: A Site-Directed Mutagenesis Study
title_sort investigating the mechanism of action of diketopiperazines inhibitors of the burkholderia cenocepacia quorum sensing synthase cepi: a site-directed mutagenesis study
topic Pharmacology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6079302/
https://www.ncbi.nlm.nih.gov/pubmed/30108505
http://dx.doi.org/10.3389/fphar.2018.00836
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