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The ClpX chaperone controls autolytic splitting of Staphylococcus aureus daughter cells, but is bypassed by β-lactam antibiotics or inhibitors of WTA biosynthesis

β-lactam antibiotics interfere with cross-linking of the bacterial cell wall, but the killing mechanism of this important class of antibiotics is not fully understood. Serendipitously we found that sub-lethal doses of β-lactams rescue growth and prevent spontaneous lysis of Staphylococcus aureus mut...

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Autores principales: Jensen, Camilla, Bæk, Kristoffer T., Gallay, Clement, Thalsø-Madsen, Ida, Xu, Lijuan, Jousselin, Ambre, Ruiz Torrubia, Fernando, Paulander, Wilhelm, Pereira, Ana R., Veening, Jan-Willem, Pinho, Mariana G., Frees, Dorte
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6760813/
https://www.ncbi.nlm.nih.gov/pubmed/31518377
http://dx.doi.org/10.1371/journal.ppat.1008044
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author Jensen, Camilla
Bæk, Kristoffer T.
Gallay, Clement
Thalsø-Madsen, Ida
Xu, Lijuan
Jousselin, Ambre
Ruiz Torrubia, Fernando
Paulander, Wilhelm
Pereira, Ana R.
Veening, Jan-Willem
Pinho, Mariana G.
Frees, Dorte
author_facet Jensen, Camilla
Bæk, Kristoffer T.
Gallay, Clement
Thalsø-Madsen, Ida
Xu, Lijuan
Jousselin, Ambre
Ruiz Torrubia, Fernando
Paulander, Wilhelm
Pereira, Ana R.
Veening, Jan-Willem
Pinho, Mariana G.
Frees, Dorte
author_sort Jensen, Camilla
collection PubMed
description β-lactam antibiotics interfere with cross-linking of the bacterial cell wall, but the killing mechanism of this important class of antibiotics is not fully understood. Serendipitously we found that sub-lethal doses of β-lactams rescue growth and prevent spontaneous lysis of Staphylococcus aureus mutants lacking the widely conserved chaperone ClpX, and we reasoned that a better understanding of the clpX phenotypes could provide novel insights into the downstream effects of β-lactam binding to the PBP targets. Super-resolution imaging revealed that clpX cells display aberrant septum synthesis, and initiate daughter cell separation prior to septum completion at 30°C, but not at 37°C, demonstrating that ClpX becomes critical for coordinating the S. aureus cell cycle as the temperature decreases. FtsZ localization and dynamics were not affected in the absence of ClpX, suggesting that ClpX affects septum formation and autolytic activation downstream of Z-ring formation. Interestingly, oxacillin antagonized the septum progression defects of clpX cells and prevented lysis of prematurely splitting clpX cells. Strikingly, inhibitors of wall teichoic acid (WTA) biosynthesis that work synergistically with β-lactams to kill MRSA synthesis also rescued growth of the clpX mutant, as did genetic inactivation of the gene encoding the septal autolysin, Sle1. Taken together, our data support a model in which Sle1 causes premature splitting and lysis of clpX daughter cells unless Sle1-dependent lysis is antagonized by β-lactams or by inhibiting an early step in WTA biosynthesis. The finding that β-lactams and inhibitors of WTA biosynthesis specifically prevent lysis of a mutant with dysregulated autolytic activity lends support to the idea that PBPs and WTA biosynthesis play an important role in coordinating cell division with autolytic splitting of daughter cells, and that β-lactams do not kill S. aureus simply by weakening the cell wall.
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spelling pubmed-67608132019-10-04 The ClpX chaperone controls autolytic splitting of Staphylococcus aureus daughter cells, but is bypassed by β-lactam antibiotics or inhibitors of WTA biosynthesis Jensen, Camilla Bæk, Kristoffer T. Gallay, Clement Thalsø-Madsen, Ida Xu, Lijuan Jousselin, Ambre Ruiz Torrubia, Fernando Paulander, Wilhelm Pereira, Ana R. Veening, Jan-Willem Pinho, Mariana G. Frees, Dorte PLoS Pathog Research Article β-lactam antibiotics interfere with cross-linking of the bacterial cell wall, but the killing mechanism of this important class of antibiotics is not fully understood. Serendipitously we found that sub-lethal doses of β-lactams rescue growth and prevent spontaneous lysis of Staphylococcus aureus mutants lacking the widely conserved chaperone ClpX, and we reasoned that a better understanding of the clpX phenotypes could provide novel insights into the downstream effects of β-lactam binding to the PBP targets. Super-resolution imaging revealed that clpX cells display aberrant septum synthesis, and initiate daughter cell separation prior to septum completion at 30°C, but not at 37°C, demonstrating that ClpX becomes critical for coordinating the S. aureus cell cycle as the temperature decreases. FtsZ localization and dynamics were not affected in the absence of ClpX, suggesting that ClpX affects septum formation and autolytic activation downstream of Z-ring formation. Interestingly, oxacillin antagonized the septum progression defects of clpX cells and prevented lysis of prematurely splitting clpX cells. Strikingly, inhibitors of wall teichoic acid (WTA) biosynthesis that work synergistically with β-lactams to kill MRSA synthesis also rescued growth of the clpX mutant, as did genetic inactivation of the gene encoding the septal autolysin, Sle1. Taken together, our data support a model in which Sle1 causes premature splitting and lysis of clpX daughter cells unless Sle1-dependent lysis is antagonized by β-lactams or by inhibiting an early step in WTA biosynthesis. The finding that β-lactams and inhibitors of WTA biosynthesis specifically prevent lysis of a mutant with dysregulated autolytic activity lends support to the idea that PBPs and WTA biosynthesis play an important role in coordinating cell division with autolytic splitting of daughter cells, and that β-lactams do not kill S. aureus simply by weakening the cell wall. Public Library of Science 2019-09-13 /pmc/articles/PMC6760813/ /pubmed/31518377 http://dx.doi.org/10.1371/journal.ppat.1008044 Text en © 2019 Jensen 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
Jensen, Camilla
Bæk, Kristoffer T.
Gallay, Clement
Thalsø-Madsen, Ida
Xu, Lijuan
Jousselin, Ambre
Ruiz Torrubia, Fernando
Paulander, Wilhelm
Pereira, Ana R.
Veening, Jan-Willem
Pinho, Mariana G.
Frees, Dorte
The ClpX chaperone controls autolytic splitting of Staphylococcus aureus daughter cells, but is bypassed by β-lactam antibiotics or inhibitors of WTA biosynthesis
title The ClpX chaperone controls autolytic splitting of Staphylococcus aureus daughter cells, but is bypassed by β-lactam antibiotics or inhibitors of WTA biosynthesis
title_full The ClpX chaperone controls autolytic splitting of Staphylococcus aureus daughter cells, but is bypassed by β-lactam antibiotics or inhibitors of WTA biosynthesis
title_fullStr The ClpX chaperone controls autolytic splitting of Staphylococcus aureus daughter cells, but is bypassed by β-lactam antibiotics or inhibitors of WTA biosynthesis
title_full_unstemmed The ClpX chaperone controls autolytic splitting of Staphylococcus aureus daughter cells, but is bypassed by β-lactam antibiotics or inhibitors of WTA biosynthesis
title_short The ClpX chaperone controls autolytic splitting of Staphylococcus aureus daughter cells, but is bypassed by β-lactam antibiotics or inhibitors of WTA biosynthesis
title_sort clpx chaperone controls autolytic splitting of staphylococcus aureus daughter cells, but is bypassed by β-lactam antibiotics or inhibitors of wta biosynthesis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6760813/
https://www.ncbi.nlm.nih.gov/pubmed/31518377
http://dx.doi.org/10.1371/journal.ppat.1008044
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