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A Translocated Effector Required for Bartonella Dissemination from Derma to Blood Safeguards Migratory Host Cells from Damage by Co-translocated Effectors

Numerous bacterial pathogens secrete multiple effectors to modulate host cellular functions. These effectors may interfere with each other to efficiently control the infection process. Bartonellae are Gram-negative, facultative intracellular bacteria using a VirB type IV secretion system to transloc...

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Autores principales: Okujava, Rusudan, Guye, Patrick, Lu, Yun-Yueh, Mistl, Claudia, Polus, Florine, Vayssier-Taussat, Muriel, Halin, Cornelia, Rolink, Antonius G., Dehio, Christoph
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4063953/
https://www.ncbi.nlm.nih.gov/pubmed/24945914
http://dx.doi.org/10.1371/journal.ppat.1004187
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author Okujava, Rusudan
Guye, Patrick
Lu, Yun-Yueh
Mistl, Claudia
Polus, Florine
Vayssier-Taussat, Muriel
Halin, Cornelia
Rolink, Antonius G.
Dehio, Christoph
author_facet Okujava, Rusudan
Guye, Patrick
Lu, Yun-Yueh
Mistl, Claudia
Polus, Florine
Vayssier-Taussat, Muriel
Halin, Cornelia
Rolink, Antonius G.
Dehio, Christoph
author_sort Okujava, Rusudan
collection PubMed
description Numerous bacterial pathogens secrete multiple effectors to modulate host cellular functions. These effectors may interfere with each other to efficiently control the infection process. Bartonellae are Gram-negative, facultative intracellular bacteria using a VirB type IV secretion system to translocate a cocktail of Bartonella effector proteins (Beps) into host cells. Based on in vitro infection models we demonstrate here that BepE protects infected migratory cells from injurious effects triggered by BepC and is required for in vivo dissemination of bacteria from the dermal site of inoculation to blood. Human endothelial cells (HUVECs) infected with a ΔbepE mutant of B. henselae (Bhe) displayed a cell fragmentation phenotype resulting from Bep-dependent disturbance of rear edge detachment during migration. A ΔbepCE mutant did not show cell fragmentation, indicating that BepC is critical for triggering this deleterious phenotype. Complementation of ΔbepE with BepE(Bhe) or its homologues from other Bartonella species abolished cell fragmentation. This cyto-protective activity is confined to the C-terminal Bartonella intracellular delivery (BID) domain of BepE(Bhe) (BID2.E(Bhe)). Ectopic expression of BID2.E(Bhe) impeded the disruption of actin stress fibers by Rho Inhibitor 1, indicating that BepE restores normal cell migration via the RhoA signaling pathway, a major regulator of rear edge retraction. An intradermal (i.d.) model for B. tribocorum (Btr) infection in the rat reservoir host mimicking the natural route of infection by blood sucking arthropods allowed demonstrating a vital role for BepE in bacterial dissemination from derma to blood. While the Btr mutant ΔbepDE was abacteremic following i.d. inoculation, complementation with BepE(Btr), BepE(Bhe) or BIDs.E(Bhe) restored bacteremia. Given that we observed a similar protective effect of BepE(Bhe) on infected bone marrow-derived dendritic cells migrating through a monolayer of lymphatic endothelial cells we propose that infected dermal dendritic cells may be involved in disseminating Bartonella towards the blood stream in a BepE-dependent manner.
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spelling pubmed-40639532014-06-25 A Translocated Effector Required for Bartonella Dissemination from Derma to Blood Safeguards Migratory Host Cells from Damage by Co-translocated Effectors Okujava, Rusudan Guye, Patrick Lu, Yun-Yueh Mistl, Claudia Polus, Florine Vayssier-Taussat, Muriel Halin, Cornelia Rolink, Antonius G. Dehio, Christoph PLoS Pathog Research Article Numerous bacterial pathogens secrete multiple effectors to modulate host cellular functions. These effectors may interfere with each other to efficiently control the infection process. Bartonellae are Gram-negative, facultative intracellular bacteria using a VirB type IV secretion system to translocate a cocktail of Bartonella effector proteins (Beps) into host cells. Based on in vitro infection models we demonstrate here that BepE protects infected migratory cells from injurious effects triggered by BepC and is required for in vivo dissemination of bacteria from the dermal site of inoculation to blood. Human endothelial cells (HUVECs) infected with a ΔbepE mutant of B. henselae (Bhe) displayed a cell fragmentation phenotype resulting from Bep-dependent disturbance of rear edge detachment during migration. A ΔbepCE mutant did not show cell fragmentation, indicating that BepC is critical for triggering this deleterious phenotype. Complementation of ΔbepE with BepE(Bhe) or its homologues from other Bartonella species abolished cell fragmentation. This cyto-protective activity is confined to the C-terminal Bartonella intracellular delivery (BID) domain of BepE(Bhe) (BID2.E(Bhe)). Ectopic expression of BID2.E(Bhe) impeded the disruption of actin stress fibers by Rho Inhibitor 1, indicating that BepE restores normal cell migration via the RhoA signaling pathway, a major regulator of rear edge retraction. An intradermal (i.d.) model for B. tribocorum (Btr) infection in the rat reservoir host mimicking the natural route of infection by blood sucking arthropods allowed demonstrating a vital role for BepE in bacterial dissemination from derma to blood. While the Btr mutant ΔbepDE was abacteremic following i.d. inoculation, complementation with BepE(Btr), BepE(Bhe) or BIDs.E(Bhe) restored bacteremia. Given that we observed a similar protective effect of BepE(Bhe) on infected bone marrow-derived dendritic cells migrating through a monolayer of lymphatic endothelial cells we propose that infected dermal dendritic cells may be involved in disseminating Bartonella towards the blood stream in a BepE-dependent manner. Public Library of Science 2014-06-19 /pmc/articles/PMC4063953/ /pubmed/24945914 http://dx.doi.org/10.1371/journal.ppat.1004187 Text en © 2014 Okujava 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
Okujava, Rusudan
Guye, Patrick
Lu, Yun-Yueh
Mistl, Claudia
Polus, Florine
Vayssier-Taussat, Muriel
Halin, Cornelia
Rolink, Antonius G.
Dehio, Christoph
A Translocated Effector Required for Bartonella Dissemination from Derma to Blood Safeguards Migratory Host Cells from Damage by Co-translocated Effectors
title A Translocated Effector Required for Bartonella Dissemination from Derma to Blood Safeguards Migratory Host Cells from Damage by Co-translocated Effectors
title_full A Translocated Effector Required for Bartonella Dissemination from Derma to Blood Safeguards Migratory Host Cells from Damage by Co-translocated Effectors
title_fullStr A Translocated Effector Required for Bartonella Dissemination from Derma to Blood Safeguards Migratory Host Cells from Damage by Co-translocated Effectors
title_full_unstemmed A Translocated Effector Required for Bartonella Dissemination from Derma to Blood Safeguards Migratory Host Cells from Damage by Co-translocated Effectors
title_short A Translocated Effector Required for Bartonella Dissemination from Derma to Blood Safeguards Migratory Host Cells from Damage by Co-translocated Effectors
title_sort translocated effector required for bartonella dissemination from derma to blood safeguards migratory host cells from damage by co-translocated effectors
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4063953/
https://www.ncbi.nlm.nih.gov/pubmed/24945914
http://dx.doi.org/10.1371/journal.ppat.1004187
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