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Restriction of the Conformational Dynamics of the Cyclic Acyldepsipeptide Antibiotics Improves Their Antibacterial Activity

[Image: see text] The cyclic acyldepsipeptide (ADEP) antibiotics are a new class of antibacterial agents that kill bacteria via a mechanism that is distinct from all clinically used drugs. These molecules bind and dysregulate the activity of the ClpP peptidase. The potential of these antibiotics as...

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Autores principales: Carney, Daniel W., Schmitz, Karl R., Truong, Jonathan V., Sauer, Robert T., Sello, Jason K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4004210/
https://www.ncbi.nlm.nih.gov/pubmed/24422534
http://dx.doi.org/10.1021/ja410385c
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author Carney, Daniel W.
Schmitz, Karl R.
Truong, Jonathan V.
Sauer, Robert T.
Sello, Jason K.
author_facet Carney, Daniel W.
Schmitz, Karl R.
Truong, Jonathan V.
Sauer, Robert T.
Sello, Jason K.
author_sort Carney, Daniel W.
collection PubMed
description [Image: see text] The cyclic acyldepsipeptide (ADEP) antibiotics are a new class of antibacterial agents that kill bacteria via a mechanism that is distinct from all clinically used drugs. These molecules bind and dysregulate the activity of the ClpP peptidase. The potential of these antibiotics as antibacterial drugs has been enhanced by the elimination of pharmacological liabilities through medicinal chemistry efforts. Here, we demonstrate that the ADEP conformation observed in the ADEP–ClpP crystal structure is fortified by transannular hydrogen bonding and can be further stabilized by judicious replacement of constituent amino acids within the peptidolactone core structure with more conformationally constrained counterparts. Evidence supporting constraint of the molecule into the bioactive conformer was obtained by measurements of deuterium-exchange kinetics of hydrogens that were proposed to be engaged in transannular hydrogen bonds. We show that the rigidified ADEP analogs bind and activate ClpP at lower concentrations in vitro. Remarkably, these compounds have up to 1200-fold enhanced antibacterial activity when compared to those with the peptidolactone core structure common to two ADEP natural products. This study compellingly demonstrates how rational modulation of conformational dynamics may be used to improve the bioactivities of natural products.
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spelling pubmed-40042102015-01-14 Restriction of the Conformational Dynamics of the Cyclic Acyldepsipeptide Antibiotics Improves Their Antibacterial Activity Carney, Daniel W. Schmitz, Karl R. Truong, Jonathan V. Sauer, Robert T. Sello, Jason K. J Am Chem Soc [Image: see text] The cyclic acyldepsipeptide (ADEP) antibiotics are a new class of antibacterial agents that kill bacteria via a mechanism that is distinct from all clinically used drugs. These molecules bind and dysregulate the activity of the ClpP peptidase. The potential of these antibiotics as antibacterial drugs has been enhanced by the elimination of pharmacological liabilities through medicinal chemistry efforts. Here, we demonstrate that the ADEP conformation observed in the ADEP–ClpP crystal structure is fortified by transannular hydrogen bonding and can be further stabilized by judicious replacement of constituent amino acids within the peptidolactone core structure with more conformationally constrained counterparts. Evidence supporting constraint of the molecule into the bioactive conformer was obtained by measurements of deuterium-exchange kinetics of hydrogens that were proposed to be engaged in transannular hydrogen bonds. We show that the rigidified ADEP analogs bind and activate ClpP at lower concentrations in vitro. Remarkably, these compounds have up to 1200-fold enhanced antibacterial activity when compared to those with the peptidolactone core structure common to two ADEP natural products. This study compellingly demonstrates how rational modulation of conformational dynamics may be used to improve the bioactivities of natural products. American Chemical Society 2014-01-14 2014-02-05 /pmc/articles/PMC4004210/ /pubmed/24422534 http://dx.doi.org/10.1021/ja410385c Text en Copyright © 2014 American Chemical Society
spellingShingle Carney, Daniel W.
Schmitz, Karl R.
Truong, Jonathan V.
Sauer, Robert T.
Sello, Jason K.
Restriction of the Conformational Dynamics of the Cyclic Acyldepsipeptide Antibiotics Improves Their Antibacterial Activity
title Restriction of the Conformational Dynamics of the Cyclic Acyldepsipeptide Antibiotics Improves Their Antibacterial Activity
title_full Restriction of the Conformational Dynamics of the Cyclic Acyldepsipeptide Antibiotics Improves Their Antibacterial Activity
title_fullStr Restriction of the Conformational Dynamics of the Cyclic Acyldepsipeptide Antibiotics Improves Their Antibacterial Activity
title_full_unstemmed Restriction of the Conformational Dynamics of the Cyclic Acyldepsipeptide Antibiotics Improves Their Antibacterial Activity
title_short Restriction of the Conformational Dynamics of the Cyclic Acyldepsipeptide Antibiotics Improves Their Antibacterial Activity
title_sort restriction of the conformational dynamics of the cyclic acyldepsipeptide antibiotics improves their antibacterial activity
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4004210/
https://www.ncbi.nlm.nih.gov/pubmed/24422534
http://dx.doi.org/10.1021/ja410385c
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