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An NlpC/P60 protein catalyzes a key step in peptidoglycan recycling at the intersection of energy recovery, cell division and immune evasion in the intracellular pathogen Chlamydia trachomatis

The obligate intracellular Chlamydiaceae do not need to resist osmotic challenges and thus lost their cell wall in the course of evolution. Nevertheless, these pathogens maintain a rudimentary peptidoglycan machinery for cell division. They build a transient peptidoglycan ring, which is remodeled du...

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Autores principales: Reuter, Jula, Otten, Christian, Jacquier, Nicolas, Lee, Junghoon, Mengin-Lecreulx, Dominique, Löckener, Iris, Kluj, Robert, Mayer, Christoph, Corona, Federico, Dannenberg, Julia, Aeby, Sébastien, Bühl, Henrike, Greub, Gilbert, Vollmer, Waldemar, Ouellette, Scot P., Schneider, Tanja, Henrichfreise, Beate
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9928106/
https://www.ncbi.nlm.nih.gov/pubmed/36730465
http://dx.doi.org/10.1371/journal.ppat.1011047
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author Reuter, Jula
Otten, Christian
Jacquier, Nicolas
Lee, Junghoon
Mengin-Lecreulx, Dominique
Löckener, Iris
Kluj, Robert
Mayer, Christoph
Corona, Federico
Dannenberg, Julia
Aeby, Sébastien
Bühl, Henrike
Greub, Gilbert
Vollmer, Waldemar
Ouellette, Scot P.
Schneider, Tanja
Henrichfreise, Beate
author_facet Reuter, Jula
Otten, Christian
Jacquier, Nicolas
Lee, Junghoon
Mengin-Lecreulx, Dominique
Löckener, Iris
Kluj, Robert
Mayer, Christoph
Corona, Federico
Dannenberg, Julia
Aeby, Sébastien
Bühl, Henrike
Greub, Gilbert
Vollmer, Waldemar
Ouellette, Scot P.
Schneider, Tanja
Henrichfreise, Beate
author_sort Reuter, Jula
collection PubMed
description The obligate intracellular Chlamydiaceae do not need to resist osmotic challenges and thus lost their cell wall in the course of evolution. Nevertheless, these pathogens maintain a rudimentary peptidoglycan machinery for cell division. They build a transient peptidoglycan ring, which is remodeled during the process of cell division and degraded afterwards. Uncontrolled degradation of peptidoglycan poses risks to the chlamydial cell, as essential building blocks might get lost or trigger host immune response upon release into the host cell. Here, we provide evidence that a primordial enzyme class prevents energy intensive de novo synthesis and uncontrolled release of immunogenic peptidoglycan subunits in Chlamydia trachomatis. Our data indicate that the homolog of a Bacillus NlpC/P60 protein is widely conserved among Chlamydiales. We show that the enzyme is tailored to hydrolyze peptidoglycan-derived peptides, does not interfere with peptidoglycan precursor biosynthesis, and is targeted by cysteine protease inhibitors in vitro and in cell culture. The peptidase plays a key role in the underexplored process of chlamydial peptidoglycan recycling. Our study suggests that chlamydiae orchestrate a closed-loop system of peptidoglycan ring biosynthesis, remodeling, and recycling to support cell division and maintain long-term residence inside the host. Operating at the intersection of energy recovery, cell division and immune evasion, the peptidoglycan recycling NlpC/P60 peptidase could be a promising target for the development of drugs that combine features of classical antibiotics and anti-virulence drugs.
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spelling pubmed-99281062023-02-15 An NlpC/P60 protein catalyzes a key step in peptidoglycan recycling at the intersection of energy recovery, cell division and immune evasion in the intracellular pathogen Chlamydia trachomatis Reuter, Jula Otten, Christian Jacquier, Nicolas Lee, Junghoon Mengin-Lecreulx, Dominique Löckener, Iris Kluj, Robert Mayer, Christoph Corona, Federico Dannenberg, Julia Aeby, Sébastien Bühl, Henrike Greub, Gilbert Vollmer, Waldemar Ouellette, Scot P. Schneider, Tanja Henrichfreise, Beate PLoS Pathog Research Article The obligate intracellular Chlamydiaceae do not need to resist osmotic challenges and thus lost their cell wall in the course of evolution. Nevertheless, these pathogens maintain a rudimentary peptidoglycan machinery for cell division. They build a transient peptidoglycan ring, which is remodeled during the process of cell division and degraded afterwards. Uncontrolled degradation of peptidoglycan poses risks to the chlamydial cell, as essential building blocks might get lost or trigger host immune response upon release into the host cell. Here, we provide evidence that a primordial enzyme class prevents energy intensive de novo synthesis and uncontrolled release of immunogenic peptidoglycan subunits in Chlamydia trachomatis. Our data indicate that the homolog of a Bacillus NlpC/P60 protein is widely conserved among Chlamydiales. We show that the enzyme is tailored to hydrolyze peptidoglycan-derived peptides, does not interfere with peptidoglycan precursor biosynthesis, and is targeted by cysteine protease inhibitors in vitro and in cell culture. The peptidase plays a key role in the underexplored process of chlamydial peptidoglycan recycling. Our study suggests that chlamydiae orchestrate a closed-loop system of peptidoglycan ring biosynthesis, remodeling, and recycling to support cell division and maintain long-term residence inside the host. Operating at the intersection of energy recovery, cell division and immune evasion, the peptidoglycan recycling NlpC/P60 peptidase could be a promising target for the development of drugs that combine features of classical antibiotics and anti-virulence drugs. Public Library of Science 2023-02-02 /pmc/articles/PMC9928106/ /pubmed/36730465 http://dx.doi.org/10.1371/journal.ppat.1011047 Text en © 2023 Reuter et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://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
Reuter, Jula
Otten, Christian
Jacquier, Nicolas
Lee, Junghoon
Mengin-Lecreulx, Dominique
Löckener, Iris
Kluj, Robert
Mayer, Christoph
Corona, Federico
Dannenberg, Julia
Aeby, Sébastien
Bühl, Henrike
Greub, Gilbert
Vollmer, Waldemar
Ouellette, Scot P.
Schneider, Tanja
Henrichfreise, Beate
An NlpC/P60 protein catalyzes a key step in peptidoglycan recycling at the intersection of energy recovery, cell division and immune evasion in the intracellular pathogen Chlamydia trachomatis
title An NlpC/P60 protein catalyzes a key step in peptidoglycan recycling at the intersection of energy recovery, cell division and immune evasion in the intracellular pathogen Chlamydia trachomatis
title_full An NlpC/P60 protein catalyzes a key step in peptidoglycan recycling at the intersection of energy recovery, cell division and immune evasion in the intracellular pathogen Chlamydia trachomatis
title_fullStr An NlpC/P60 protein catalyzes a key step in peptidoglycan recycling at the intersection of energy recovery, cell division and immune evasion in the intracellular pathogen Chlamydia trachomatis
title_full_unstemmed An NlpC/P60 protein catalyzes a key step in peptidoglycan recycling at the intersection of energy recovery, cell division and immune evasion in the intracellular pathogen Chlamydia trachomatis
title_short An NlpC/P60 protein catalyzes a key step in peptidoglycan recycling at the intersection of energy recovery, cell division and immune evasion in the intracellular pathogen Chlamydia trachomatis
title_sort nlpc/p60 protein catalyzes a key step in peptidoglycan recycling at the intersection of energy recovery, cell division and immune evasion in the intracellular pathogen chlamydia trachomatis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9928106/
https://www.ncbi.nlm.nih.gov/pubmed/36730465
http://dx.doi.org/10.1371/journal.ppat.1011047
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