Cargando…

Escherichia coli MazF Leads to the Simultaneous Selective Synthesis of Both “Death Proteins” and “Survival Proteins”

The Escherichia coli mazEF module is one of the most thoroughly studied toxin–antitoxin systems. mazF encodes a stable toxin, MazF, and mazE encodes a labile antitoxin, MazE, which prevents the lethal effect of MazF. MazF is an endoribonuclease that leads to the inhibition of protein synthesis by cl...

Descripción completa

Detalles Bibliográficos
Autores principales: Amitai, Shahar, Kolodkin-Gal, Ilana, Hananya-Meltabashi, Mirit, Sacher, Ayelet, Engelberg-Kulka, Hanna
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2646832/
https://www.ncbi.nlm.nih.gov/pubmed/19282968
http://dx.doi.org/10.1371/journal.pgen.1000390
_version_ 1782164896069189632
author Amitai, Shahar
Kolodkin-Gal, Ilana
Hananya-Meltabashi, Mirit
Sacher, Ayelet
Engelberg-Kulka, Hanna
author_facet Amitai, Shahar
Kolodkin-Gal, Ilana
Hananya-Meltabashi, Mirit
Sacher, Ayelet
Engelberg-Kulka, Hanna
author_sort Amitai, Shahar
collection PubMed
description The Escherichia coli mazEF module is one of the most thoroughly studied toxin–antitoxin systems. mazF encodes a stable toxin, MazF, and mazE encodes a labile antitoxin, MazE, which prevents the lethal effect of MazF. MazF is an endoribonuclease that leads to the inhibition of protein synthesis by cleaving mRNAs at ACA sequences. Here, using 2D-gels, we show that in E. coli, although MazF induction leads to the inhibition of the synthesis of most proteins, the synthesis of an exclusive group of proteins, mostly smaller than about 20 kDa, is still permitted. We identified some of those small proteins by mass spectrometry. By deleting the genes encoding those proteins from the E. coli chromosome, we showed that they were required for the death of most of the cellular population. Under the same experimental conditions, which induce mazEF-mediated cell death, other such proteins were found to be required for the survival of a small sub-population of cells. Thus, MazF appears to be a regulator that induces downstream pathways leading to death of most of the population and the continued survival of a small sub-population, which will likely become the nucleus of a new population when growth conditions become less stressful.
format Text
id pubmed-2646832
institution National Center for Biotechnology Information
language English
publishDate 2009
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-26468322009-03-13 Escherichia coli MazF Leads to the Simultaneous Selective Synthesis of Both “Death Proteins” and “Survival Proteins” Amitai, Shahar Kolodkin-Gal, Ilana Hananya-Meltabashi, Mirit Sacher, Ayelet Engelberg-Kulka, Hanna PLoS Genet Research Article The Escherichia coli mazEF module is one of the most thoroughly studied toxin–antitoxin systems. mazF encodes a stable toxin, MazF, and mazE encodes a labile antitoxin, MazE, which prevents the lethal effect of MazF. MazF is an endoribonuclease that leads to the inhibition of protein synthesis by cleaving mRNAs at ACA sequences. Here, using 2D-gels, we show that in E. coli, although MazF induction leads to the inhibition of the synthesis of most proteins, the synthesis of an exclusive group of proteins, mostly smaller than about 20 kDa, is still permitted. We identified some of those small proteins by mass spectrometry. By deleting the genes encoding those proteins from the E. coli chromosome, we showed that they were required for the death of most of the cellular population. Under the same experimental conditions, which induce mazEF-mediated cell death, other such proteins were found to be required for the survival of a small sub-population of cells. Thus, MazF appears to be a regulator that induces downstream pathways leading to death of most of the population and the continued survival of a small sub-population, which will likely become the nucleus of a new population when growth conditions become less stressful. Public Library of Science 2009-03-13 /pmc/articles/PMC2646832/ /pubmed/19282968 http://dx.doi.org/10.1371/journal.pgen.1000390 Text en Amitai et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Amitai, Shahar
Kolodkin-Gal, Ilana
Hananya-Meltabashi, Mirit
Sacher, Ayelet
Engelberg-Kulka, Hanna
Escherichia coli MazF Leads to the Simultaneous Selective Synthesis of Both “Death Proteins” and “Survival Proteins”
title Escherichia coli MazF Leads to the Simultaneous Selective Synthesis of Both “Death Proteins” and “Survival Proteins”
title_full Escherichia coli MazF Leads to the Simultaneous Selective Synthesis of Both “Death Proteins” and “Survival Proteins”
title_fullStr Escherichia coli MazF Leads to the Simultaneous Selective Synthesis of Both “Death Proteins” and “Survival Proteins”
title_full_unstemmed Escherichia coli MazF Leads to the Simultaneous Selective Synthesis of Both “Death Proteins” and “Survival Proteins”
title_short Escherichia coli MazF Leads to the Simultaneous Selective Synthesis of Both “Death Proteins” and “Survival Proteins”
title_sort escherichia coli mazf leads to the simultaneous selective synthesis of both “death proteins” and “survival proteins”
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2646832/
https://www.ncbi.nlm.nih.gov/pubmed/19282968
http://dx.doi.org/10.1371/journal.pgen.1000390
work_keys_str_mv AT amitaishahar escherichiacolimazfleadstothesimultaneousselectivesynthesisofbothdeathproteinsandsurvivalproteins
AT kolodkingalilana escherichiacolimazfleadstothesimultaneousselectivesynthesisofbothdeathproteinsandsurvivalproteins
AT hananyameltabashimirit escherichiacolimazfleadstothesimultaneousselectivesynthesisofbothdeathproteinsandsurvivalproteins
AT sacherayelet escherichiacolimazfleadstothesimultaneousselectivesynthesisofbothdeathproteinsandsurvivalproteins
AT engelbergkulkahanna escherichiacolimazfleadstothesimultaneousselectivesynthesisofbothdeathproteinsandsurvivalproteins