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Methylation Warfare: Interaction of Pneumococcal Bacteriophages with Their Host

Virus-host interactions are regulated by complex coevolutionary dynamics. In Streptococcus pneumoniae, phase-variable type I restriction-modification (R-M) systems are part of the core genome. We hypothesized that the ability of the R-M systems to switch between six target DNA specificities also has...

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Autores principales: Furi, Leonardo, Crawford, Liam A., Rangel-Pineros, Guillermo, Manso, Ana S., De Ste Croix, Megan, Haigh, Richard D., Kwun, Min J., Engelsen Fjelland, Kristine, Gilfillan, Gregor D., Bentley, Stephen D., Croucher, Nicholas J., Clokie, Martha R., Oggioni, Marco R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6755750/
https://www.ncbi.nlm.nih.gov/pubmed/31285240
http://dx.doi.org/10.1128/JB.00370-19
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author Furi, Leonardo
Crawford, Liam A.
Rangel-Pineros, Guillermo
Manso, Ana S.
De Ste Croix, Megan
Haigh, Richard D.
Kwun, Min J.
Engelsen Fjelland, Kristine
Gilfillan, Gregor D.
Bentley, Stephen D.
Croucher, Nicholas J.
Clokie, Martha R.
Oggioni, Marco R.
author_facet Furi, Leonardo
Crawford, Liam A.
Rangel-Pineros, Guillermo
Manso, Ana S.
De Ste Croix, Megan
Haigh, Richard D.
Kwun, Min J.
Engelsen Fjelland, Kristine
Gilfillan, Gregor D.
Bentley, Stephen D.
Croucher, Nicholas J.
Clokie, Martha R.
Oggioni, Marco R.
author_sort Furi, Leonardo
collection PubMed
description Virus-host interactions are regulated by complex coevolutionary dynamics. In Streptococcus pneumoniae, phase-variable type I restriction-modification (R-M) systems are part of the core genome. We hypothesized that the ability of the R-M systems to switch between six target DNA specificities also has a key role in preventing the spread of bacteriophages. Using the streptococcal temperate bacteriophage SpSL1, we show that the variants of both the SpnIII and SpnIV R-M systems are able to restrict invading bacteriophage with an efficiency approximately proportional to the number of target sites in the bacteriophage genome. In addition to restriction of lytic replication, SpnIII also led to abortive infection in the majority of host cells. During lytic infection, transcriptional analysis found evidence of phage-host interaction through the strong upregulation of the nrdR nucleotide biosynthesis regulon. During lysogeny, the phage had less of an effect on host gene regulation. This research demonstrates a novel combined bacteriophage restriction and abortive infection mechanism, highlighting the importance that the phase-variable type I R-M systems have in the multifunctional defense against bacteriophage infection in the respiratory pathogen S. pneumoniae. IMPORTANCE With antimicrobial drug resistance becoming an increasing burden on human health, much attention has been focused on the potential use of bacteriophages and their enzymes as therapeutics. However, the investigations into the physiology of the complex interactions of bacteriophages with their hosts have attracted far less attention, in comparison. This work describes the molecular characterization of the infectious cycle of a bacteriophage in the important human pathogen Streptococcus pneumoniae and explores the intricate relationship between phase-variable host defense mechanisms and the virus. This is the first report showing how a phase-variable type I restriction-modification system is involved in bacteriophage restriction while it also provides an additional level of infection control through abortive infection.
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spelling pubmed-67557502019-10-01 Methylation Warfare: Interaction of Pneumococcal Bacteriophages with Their Host Furi, Leonardo Crawford, Liam A. Rangel-Pineros, Guillermo Manso, Ana S. De Ste Croix, Megan Haigh, Richard D. Kwun, Min J. Engelsen Fjelland, Kristine Gilfillan, Gregor D. Bentley, Stephen D. Croucher, Nicholas J. Clokie, Martha R. Oggioni, Marco R. J Bacteriol Research Article Virus-host interactions are regulated by complex coevolutionary dynamics. In Streptococcus pneumoniae, phase-variable type I restriction-modification (R-M) systems are part of the core genome. We hypothesized that the ability of the R-M systems to switch between six target DNA specificities also has a key role in preventing the spread of bacteriophages. Using the streptococcal temperate bacteriophage SpSL1, we show that the variants of both the SpnIII and SpnIV R-M systems are able to restrict invading bacteriophage with an efficiency approximately proportional to the number of target sites in the bacteriophage genome. In addition to restriction of lytic replication, SpnIII also led to abortive infection in the majority of host cells. During lytic infection, transcriptional analysis found evidence of phage-host interaction through the strong upregulation of the nrdR nucleotide biosynthesis regulon. During lysogeny, the phage had less of an effect on host gene regulation. This research demonstrates a novel combined bacteriophage restriction and abortive infection mechanism, highlighting the importance that the phase-variable type I R-M systems have in the multifunctional defense against bacteriophage infection in the respiratory pathogen S. pneumoniae. IMPORTANCE With antimicrobial drug resistance becoming an increasing burden on human health, much attention has been focused on the potential use of bacteriophages and their enzymes as therapeutics. However, the investigations into the physiology of the complex interactions of bacteriophages with their hosts have attracted far less attention, in comparison. This work describes the molecular characterization of the infectious cycle of a bacteriophage in the important human pathogen Streptococcus pneumoniae and explores the intricate relationship between phase-variable host defense mechanisms and the virus. This is the first report showing how a phase-variable type I restriction-modification system is involved in bacteriophage restriction while it also provides an additional level of infection control through abortive infection. American Society for Microbiology 2019-09-06 /pmc/articles/PMC6755750/ /pubmed/31285240 http://dx.doi.org/10.1128/JB.00370-19 Text en Copyright © 2019 Furi 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
Furi, Leonardo
Crawford, Liam A.
Rangel-Pineros, Guillermo
Manso, Ana S.
De Ste Croix, Megan
Haigh, Richard D.
Kwun, Min J.
Engelsen Fjelland, Kristine
Gilfillan, Gregor D.
Bentley, Stephen D.
Croucher, Nicholas J.
Clokie, Martha R.
Oggioni, Marco R.
Methylation Warfare: Interaction of Pneumococcal Bacteriophages with Their Host
title Methylation Warfare: Interaction of Pneumococcal Bacteriophages with Their Host
title_full Methylation Warfare: Interaction of Pneumococcal Bacteriophages with Their Host
title_fullStr Methylation Warfare: Interaction of Pneumococcal Bacteriophages with Their Host
title_full_unstemmed Methylation Warfare: Interaction of Pneumococcal Bacteriophages with Their Host
title_short Methylation Warfare: Interaction of Pneumococcal Bacteriophages with Their Host
title_sort methylation warfare: interaction of pneumococcal bacteriophages with their host
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6755750/
https://www.ncbi.nlm.nih.gov/pubmed/31285240
http://dx.doi.org/10.1128/JB.00370-19
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