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Disruption of the NlpD lipoprotein of the plague pathogen Yersinia pestis affects iron acquisition and the activity of the twin-arginine translocation system

We have previously shown that the cell morphogenesis NlpD lipoprotein is essential for virulence of the plague bacteria, Yersinia pestis. To elucidate the role of NlpD in Y. pestis pathogenicity, we conducted a whole-genome comparative transcriptome analysis of the wild-type Y. pestis strain and an...

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Autores principales: Tidhar, Avital, Levy, Yinon, Zauberman, Ayelet, Vagima, Yaron, Gur, David, Aftalion, Moshe, Israeli, Ofir, Chitlaru, Theodor, Ariel, Naomi, Flashner, Yehuda, Zvi, Anat, Mamroud, Emanuelle
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6553720/
https://www.ncbi.nlm.nih.gov/pubmed/31170147
http://dx.doi.org/10.1371/journal.pntd.0007449
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author Tidhar, Avital
Levy, Yinon
Zauberman, Ayelet
Vagima, Yaron
Gur, David
Aftalion, Moshe
Israeli, Ofir
Chitlaru, Theodor
Ariel, Naomi
Flashner, Yehuda
Zvi, Anat
Mamroud, Emanuelle
author_facet Tidhar, Avital
Levy, Yinon
Zauberman, Ayelet
Vagima, Yaron
Gur, David
Aftalion, Moshe
Israeli, Ofir
Chitlaru, Theodor
Ariel, Naomi
Flashner, Yehuda
Zvi, Anat
Mamroud, Emanuelle
author_sort Tidhar, Avital
collection PubMed
description We have previously shown that the cell morphogenesis NlpD lipoprotein is essential for virulence of the plague bacteria, Yersinia pestis. To elucidate the role of NlpD in Y. pestis pathogenicity, we conducted a whole-genome comparative transcriptome analysis of the wild-type Y. pestis strain and an nlpD mutant under conditions mimicking early stages of infection. The analysis suggested that NlpD is involved in three phenomena: (i) Envelope stability/integrity evidenced by compensatory up-regulation of the Cpx and Psp membrane stress-response systems in the mutant; (ii) iron acquisition, supported by modulation of iron metabolism genes and by limited growth in iron-deprived medium; (iii) activity of the twin-arginine (Tat) system, which translocates folded proteins across the cytoplasmic membrane. Virulence studies of Y. pestis strains mutated in individual Tat components clearly indicated that the Tat system is central in Y. pestis pathogenicity and substantiated the assumption that NlpD essentiality in iron utilization involves the activity of the Tat system. This study reveals a new role for NlpD in Tat system activity and iron assimilation suggesting a modality by which this lipoprotein is involved in Y. pestis pathogenesis.
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spelling pubmed-65537202019-06-17 Disruption of the NlpD lipoprotein of the plague pathogen Yersinia pestis affects iron acquisition and the activity of the twin-arginine translocation system Tidhar, Avital Levy, Yinon Zauberman, Ayelet Vagima, Yaron Gur, David Aftalion, Moshe Israeli, Ofir Chitlaru, Theodor Ariel, Naomi Flashner, Yehuda Zvi, Anat Mamroud, Emanuelle PLoS Negl Trop Dis Research Article We have previously shown that the cell morphogenesis NlpD lipoprotein is essential for virulence of the plague bacteria, Yersinia pestis. To elucidate the role of NlpD in Y. pestis pathogenicity, we conducted a whole-genome comparative transcriptome analysis of the wild-type Y. pestis strain and an nlpD mutant under conditions mimicking early stages of infection. The analysis suggested that NlpD is involved in three phenomena: (i) Envelope stability/integrity evidenced by compensatory up-regulation of the Cpx and Psp membrane stress-response systems in the mutant; (ii) iron acquisition, supported by modulation of iron metabolism genes and by limited growth in iron-deprived medium; (iii) activity of the twin-arginine (Tat) system, which translocates folded proteins across the cytoplasmic membrane. Virulence studies of Y. pestis strains mutated in individual Tat components clearly indicated that the Tat system is central in Y. pestis pathogenicity and substantiated the assumption that NlpD essentiality in iron utilization involves the activity of the Tat system. This study reveals a new role for NlpD in Tat system activity and iron assimilation suggesting a modality by which this lipoprotein is involved in Y. pestis pathogenesis. Public Library of Science 2019-06-06 /pmc/articles/PMC6553720/ /pubmed/31170147 http://dx.doi.org/10.1371/journal.pntd.0007449 Text en © 2019 Tidhar 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Tidhar, Avital
Levy, Yinon
Zauberman, Ayelet
Vagima, Yaron
Gur, David
Aftalion, Moshe
Israeli, Ofir
Chitlaru, Theodor
Ariel, Naomi
Flashner, Yehuda
Zvi, Anat
Mamroud, Emanuelle
Disruption of the NlpD lipoprotein of the plague pathogen Yersinia pestis affects iron acquisition and the activity of the twin-arginine translocation system
title Disruption of the NlpD lipoprotein of the plague pathogen Yersinia pestis affects iron acquisition and the activity of the twin-arginine translocation system
title_full Disruption of the NlpD lipoprotein of the plague pathogen Yersinia pestis affects iron acquisition and the activity of the twin-arginine translocation system
title_fullStr Disruption of the NlpD lipoprotein of the plague pathogen Yersinia pestis affects iron acquisition and the activity of the twin-arginine translocation system
title_full_unstemmed Disruption of the NlpD lipoprotein of the plague pathogen Yersinia pestis affects iron acquisition and the activity of the twin-arginine translocation system
title_short Disruption of the NlpD lipoprotein of the plague pathogen Yersinia pestis affects iron acquisition and the activity of the twin-arginine translocation system
title_sort disruption of the nlpd lipoprotein of the plague pathogen yersinia pestis affects iron acquisition and the activity of the twin-arginine translocation system
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6553720/
https://www.ncbi.nlm.nih.gov/pubmed/31170147
http://dx.doi.org/10.1371/journal.pntd.0007449
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