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The Chlamydia effector CpoS modulates the inclusion microenvironment and restricts the interferon response by acting on Rab35

The obligate intracellular bacterium Chlamydia trachomatis inserts a family of inclusion membrane (Inc) proteins into the membrane of its vacuole (the inclusion). The Inc CpoS is a critical suppressor of host cellular immune surveillance, but the underlying mechanism remained elusive. By complementi...

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Autores principales: Meier, Karsten, Jachmann, Lana H., Türköz, Gözde, Babu Sait, Mohammed Rizwan, Pérez, Lucía, Kepp, Oliver, Valdivia, Raphael H., Kroemer, Guido, Sixt, Barbara S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10470785/
https://www.ncbi.nlm.nih.gov/pubmed/37530528
http://dx.doi.org/10.1128/mbio.03190-22
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author Meier, Karsten
Jachmann, Lana H.
Türköz, Gözde
Babu Sait, Mohammed Rizwan
Pérez, Lucía
Kepp, Oliver
Valdivia, Raphael H.
Kroemer, Guido
Sixt, Barbara S.
author_facet Meier, Karsten
Jachmann, Lana H.
Türköz, Gözde
Babu Sait, Mohammed Rizwan
Pérez, Lucía
Kepp, Oliver
Valdivia, Raphael H.
Kroemer, Guido
Sixt, Barbara S.
author_sort Meier, Karsten
collection PubMed
description The obligate intracellular bacterium Chlamydia trachomatis inserts a family of inclusion membrane (Inc) proteins into the membrane of its vacuole (the inclusion). The Inc CpoS is a critical suppressor of host cellular immune surveillance, but the underlying mechanism remained elusive. By complementing a cpoS mutant with various natural orthologs and variants of CpoS, we linked distinct molecular interactions of CpoS to distinct functions. Unexpectedly, we found CpoS to be essential for the formation of inclusion membrane microdomains that control the spatial organization of multiple Incs involved in signaling and modulation of the host cellular cytoskeleton. While the function of CpoS in microdomains was uncoupled from its role in the suppression of host cellular defenses, we found the ability of CpoS to interact with Rab GTPases to be required not only for the manipulation of membrane trafficking, such as to mediate transport of ceramide-derived lipids (sphingolipids) to the inclusion, but also for the inhibition of Stimulator of interferon genes (STING)-dependent type I interferon responses. Indeed, depletion of Rab35 phenocopied the exacerbated interferon responses observed during infection with CpoS-deficient mutants. Overall, our findings highlight the role of Inc–Inc interactions in shaping the inclusion microenvironment and the modulation of membrane trafficking as a pathogenic immune evasion strategy. IMPORTANCE: Chlamydia trachomatis is a prevalent bacterial pathogen that causes blinding ocular scarring and urogenital infections that can lead to infertility and pregnancy complications. Because Chlamydia can only grow within its host cell, boosting the intrinsic defenses of human cells may represent a novel strategy to fight pathogen replication and survival. Hence, CpoS, a Chlamydia protein known to block host cellular defenses, or processes regulated by CpoS, could provide new opportunities for therapeutic intervention. By revealing CpoS as a multifunctional virulence factor and by linking its ability to block host cellular immune signaling to the modulation of membrane trafficking, the present work may provide a foundation for such rationale targeting and advances our understanding of how intracellular bacteria can shape and protect their growth niche.
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spelling pubmed-104707852023-09-01 The Chlamydia effector CpoS modulates the inclusion microenvironment and restricts the interferon response by acting on Rab35 Meier, Karsten Jachmann, Lana H. Türköz, Gözde Babu Sait, Mohammed Rizwan Pérez, Lucía Kepp, Oliver Valdivia, Raphael H. Kroemer, Guido Sixt, Barbara S. mBio Research Article The obligate intracellular bacterium Chlamydia trachomatis inserts a family of inclusion membrane (Inc) proteins into the membrane of its vacuole (the inclusion). The Inc CpoS is a critical suppressor of host cellular immune surveillance, but the underlying mechanism remained elusive. By complementing a cpoS mutant with various natural orthologs and variants of CpoS, we linked distinct molecular interactions of CpoS to distinct functions. Unexpectedly, we found CpoS to be essential for the formation of inclusion membrane microdomains that control the spatial organization of multiple Incs involved in signaling and modulation of the host cellular cytoskeleton. While the function of CpoS in microdomains was uncoupled from its role in the suppression of host cellular defenses, we found the ability of CpoS to interact with Rab GTPases to be required not only for the manipulation of membrane trafficking, such as to mediate transport of ceramide-derived lipids (sphingolipids) to the inclusion, but also for the inhibition of Stimulator of interferon genes (STING)-dependent type I interferon responses. Indeed, depletion of Rab35 phenocopied the exacerbated interferon responses observed during infection with CpoS-deficient mutants. Overall, our findings highlight the role of Inc–Inc interactions in shaping the inclusion microenvironment and the modulation of membrane trafficking as a pathogenic immune evasion strategy. IMPORTANCE: Chlamydia trachomatis is a prevalent bacterial pathogen that causes blinding ocular scarring and urogenital infections that can lead to infertility and pregnancy complications. Because Chlamydia can only grow within its host cell, boosting the intrinsic defenses of human cells may represent a novel strategy to fight pathogen replication and survival. Hence, CpoS, a Chlamydia protein known to block host cellular defenses, or processes regulated by CpoS, could provide new opportunities for therapeutic intervention. By revealing CpoS as a multifunctional virulence factor and by linking its ability to block host cellular immune signaling to the modulation of membrane trafficking, the present work may provide a foundation for such rationale targeting and advances our understanding of how intracellular bacteria can shape and protect their growth niche. American Society for Microbiology 2023-08-02 /pmc/articles/PMC10470785/ /pubmed/37530528 http://dx.doi.org/10.1128/mbio.03190-22 Text en Copyright © 2023 Meier et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Meier, Karsten
Jachmann, Lana H.
Türköz, Gözde
Babu Sait, Mohammed Rizwan
Pérez, Lucía
Kepp, Oliver
Valdivia, Raphael H.
Kroemer, Guido
Sixt, Barbara S.
The Chlamydia effector CpoS modulates the inclusion microenvironment and restricts the interferon response by acting on Rab35
title The Chlamydia effector CpoS modulates the inclusion microenvironment and restricts the interferon response by acting on Rab35
title_full The Chlamydia effector CpoS modulates the inclusion microenvironment and restricts the interferon response by acting on Rab35
title_fullStr The Chlamydia effector CpoS modulates the inclusion microenvironment and restricts the interferon response by acting on Rab35
title_full_unstemmed The Chlamydia effector CpoS modulates the inclusion microenvironment and restricts the interferon response by acting on Rab35
title_short The Chlamydia effector CpoS modulates the inclusion microenvironment and restricts the interferon response by acting on Rab35
title_sort chlamydia effector cpos modulates the inclusion microenvironment and restricts the interferon response by acting on rab35
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10470785/
https://www.ncbi.nlm.nih.gov/pubmed/37530528
http://dx.doi.org/10.1128/mbio.03190-22
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