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ε/ζ systems: their role in resistance, virulence, and their potential for antibiotic development

Cell death in bacteria can be triggered by activation of self-inflicted molecular mechanisms. Pathogenic bacteria often make use of suicide mechanisms in which the death of individual cells benefits survival of the population. Important elements for programmed cell death in bacteria are proteinaceou...

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Autores principales: Mutschler, Hannes, Meinhart, Anton
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer-Verlag 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3218275/
https://www.ncbi.nlm.nih.gov/pubmed/21822621
http://dx.doi.org/10.1007/s00109-011-0797-4
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author Mutschler, Hannes
Meinhart, Anton
author_facet Mutschler, Hannes
Meinhart, Anton
author_sort Mutschler, Hannes
collection PubMed
description Cell death in bacteria can be triggered by activation of self-inflicted molecular mechanisms. Pathogenic bacteria often make use of suicide mechanisms in which the death of individual cells benefits survival of the population. Important elements for programmed cell death in bacteria are proteinaceous toxin–antitoxin systems. While the toxin generally resides dormant in the bacterial cytosol in complex with its antitoxin, conditions such as impaired de novo synthesis of the antitoxin or nutritional stress lead to antitoxin degradation and toxin activation. A widespread toxin–antitoxin family consists of the ε/ζ systems, which are distributed over plasmids and chromosomes of various pathogenic bacteria. In its inactive state, the bacteriotoxic ζ toxin protein is inhibited by its cognate antitoxin ε. Upon degradation of ε, the ζ toxin is released allowing this enzyme to poison bacterial cell wall synthesis, which eventually triggers autolysis. ε/ζ systems ensure stable plasmid inheritance by inducing death in plasmid-deprived offspring cells. In contrast, chromosomally encoded ε/ζ systems were reported to contribute to virulence of pathogenic bacteria, possibly by inducing autolysis in individual cells under stressful conditions. The capability of toxin–antitoxin systems to kill bacteria has made them potential targets for new therapeutic compounds. Toxin activation could be hijacked to induce suicide of bacteria. Likewise, the unique mechanism of ζ toxins could serve as template for new drugs. Contrarily, inhibition of virulence-associated ζ toxins might attenuate infections. Here we provide an overview of ε/ζ toxin–antitoxin family and its potential role in the development of new therapeutic approaches in microbial defense.
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spelling pubmed-32182752011-12-09 ε/ζ systems: their role in resistance, virulence, and their potential for antibiotic development Mutschler, Hannes Meinhart, Anton J Mol Med (Berl) Review Cell death in bacteria can be triggered by activation of self-inflicted molecular mechanisms. Pathogenic bacteria often make use of suicide mechanisms in which the death of individual cells benefits survival of the population. Important elements for programmed cell death in bacteria are proteinaceous toxin–antitoxin systems. While the toxin generally resides dormant in the bacterial cytosol in complex with its antitoxin, conditions such as impaired de novo synthesis of the antitoxin or nutritional stress lead to antitoxin degradation and toxin activation. A widespread toxin–antitoxin family consists of the ε/ζ systems, which are distributed over plasmids and chromosomes of various pathogenic bacteria. In its inactive state, the bacteriotoxic ζ toxin protein is inhibited by its cognate antitoxin ε. Upon degradation of ε, the ζ toxin is released allowing this enzyme to poison bacterial cell wall synthesis, which eventually triggers autolysis. ε/ζ systems ensure stable plasmid inheritance by inducing death in plasmid-deprived offspring cells. In contrast, chromosomally encoded ε/ζ systems were reported to contribute to virulence of pathogenic bacteria, possibly by inducing autolysis in individual cells under stressful conditions. The capability of toxin–antitoxin systems to kill bacteria has made them potential targets for new therapeutic compounds. Toxin activation could be hijacked to induce suicide of bacteria. Likewise, the unique mechanism of ζ toxins could serve as template for new drugs. Contrarily, inhibition of virulence-associated ζ toxins might attenuate infections. Here we provide an overview of ε/ζ toxin–antitoxin family and its potential role in the development of new therapeutic approaches in microbial defense. Springer-Verlag 2011-08-06 2011 /pmc/articles/PMC3218275/ /pubmed/21822621 http://dx.doi.org/10.1007/s00109-011-0797-4 Text en © The Author(s) 2011 https://creativecommons.org/licenses/by-nc/4.0/ This article is distributed under the terms of the Creative Commons Attribution Noncommercial License which permits any noncommercial use, distribution, and reproduction in any medium, provided the original author(s) and source are credited.
spellingShingle Review
Mutschler, Hannes
Meinhart, Anton
ε/ζ systems: their role in resistance, virulence, and their potential for antibiotic development
title ε/ζ systems: their role in resistance, virulence, and their potential for antibiotic development
title_full ε/ζ systems: their role in resistance, virulence, and their potential for antibiotic development
title_fullStr ε/ζ systems: their role in resistance, virulence, and their potential for antibiotic development
title_full_unstemmed ε/ζ systems: their role in resistance, virulence, and their potential for antibiotic development
title_short ε/ζ systems: their role in resistance, virulence, and their potential for antibiotic development
title_sort ε/ζ systems: their role in resistance, virulence, and their potential for antibiotic development
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3218275/
https://www.ncbi.nlm.nih.gov/pubmed/21822621
http://dx.doi.org/10.1007/s00109-011-0797-4
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