Molecular mechanisms of ethanol-induced pathogenesis revealed by RNA-sequencing.

Acinetobacter baumannii is a common pathogen whose recent resistance to drugs has emerged as a major health problem. Ethanol has been found to increase the virulence of A. baumannii in Dictyostelium discoideum and Caenorhabditis elegans models of infection. To better understand the causes of this ef...

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Main Authors: Laura Camarena, Vincent Bruno, Ghia Euskirchen, Sebastian Poggio, Michael Snyder
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2010-04-01
Series:PLoS Pathogens
Online Access:https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/20368969/pdf/?tool=EBI
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spelling doaj-24f6110ba317460a91e99f402a51e5c92021-04-21T17:35:05ZengPublic Library of Science (PLoS)PLoS Pathogens1553-73661553-73742010-04-0164e100083410.1371/journal.ppat.1000834Molecular mechanisms of ethanol-induced pathogenesis revealed by RNA-sequencing.Laura CamarenaVincent BrunoGhia EuskirchenSebastian PoggioMichael SnyderAcinetobacter baumannii is a common pathogen whose recent resistance to drugs has emerged as a major health problem. Ethanol has been found to increase the virulence of A. baumannii in Dictyostelium discoideum and Caenorhabditis elegans models of infection. To better understand the causes of this effect, we examined the transcriptional profile of A. baumannii grown in the presence or absence of ethanol using RNA-Seq. Using the Illumina/Solexa platform, a total of 43,453,960 reads (35 nt) were obtained, of which 3,596,474 mapped uniquely to the genome. Our analysis revealed that ethanol induces the expression of 49 genes that belong to different functional categories. A strong induction was observed for genes encoding metabolic enzymes, indicating that ethanol is efficiently assimilated. In addition, we detected the induction of genes encoding stress proteins, including upsA, hsp90, groEL and lon as well as permeases, efflux pumps and a secreted phospholipase C. In stationary phase, ethanol strongly induced several genes involved with iron assimilation and a high-affinity phosphate transport system, indicating that A. baumannii makes a better use of the iron and phosphate resources in the medium when ethanol is used as a carbon source. To evaluate the role of phospholipase C (Plc1) in virulence, we generated and analyzed a deletion mutant for plc1. This strain exhibits a modest, but reproducible, reduction in the cytotoxic effect caused by A. baumannii on epithelial cells, suggesting that phospholipase C is important for virulence. Overall, our results indicate the power of applying RNA-Seq to identify key modulators of bacterial pathogenesis. We suggest that the effect of ethanol on the virulence of A. baumannii is multifactorial and includes a general stress response and other specific components such as phospholipase C.https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/20368969/pdf/?tool=EBI
collection DOAJ
language English
format Article
sources DOAJ
author Laura Camarena
Vincent Bruno
Ghia Euskirchen
Sebastian Poggio
Michael Snyder
spellingShingle Laura Camarena
Vincent Bruno
Ghia Euskirchen
Sebastian Poggio
Michael Snyder
Molecular mechanisms of ethanol-induced pathogenesis revealed by RNA-sequencing.
PLoS Pathogens
author_facet Laura Camarena
Vincent Bruno
Ghia Euskirchen
Sebastian Poggio
Michael Snyder
author_sort Laura Camarena
title Molecular mechanisms of ethanol-induced pathogenesis revealed by RNA-sequencing.
title_short Molecular mechanisms of ethanol-induced pathogenesis revealed by RNA-sequencing.
title_full Molecular mechanisms of ethanol-induced pathogenesis revealed by RNA-sequencing.
title_fullStr Molecular mechanisms of ethanol-induced pathogenesis revealed by RNA-sequencing.
title_full_unstemmed Molecular mechanisms of ethanol-induced pathogenesis revealed by RNA-sequencing.
title_sort molecular mechanisms of ethanol-induced pathogenesis revealed by rna-sequencing.
publisher Public Library of Science (PLoS)
series PLoS Pathogens
issn 1553-7366
1553-7374
publishDate 2010-04-01
description Acinetobacter baumannii is a common pathogen whose recent resistance to drugs has emerged as a major health problem. Ethanol has been found to increase the virulence of A. baumannii in Dictyostelium discoideum and Caenorhabditis elegans models of infection. To better understand the causes of this effect, we examined the transcriptional profile of A. baumannii grown in the presence or absence of ethanol using RNA-Seq. Using the Illumina/Solexa platform, a total of 43,453,960 reads (35 nt) were obtained, of which 3,596,474 mapped uniquely to the genome. Our analysis revealed that ethanol induces the expression of 49 genes that belong to different functional categories. A strong induction was observed for genes encoding metabolic enzymes, indicating that ethanol is efficiently assimilated. In addition, we detected the induction of genes encoding stress proteins, including upsA, hsp90, groEL and lon as well as permeases, efflux pumps and a secreted phospholipase C. In stationary phase, ethanol strongly induced several genes involved with iron assimilation and a high-affinity phosphate transport system, indicating that A. baumannii makes a better use of the iron and phosphate resources in the medium when ethanol is used as a carbon source. To evaluate the role of phospholipase C (Plc1) in virulence, we generated and analyzed a deletion mutant for plc1. This strain exhibits a modest, but reproducible, reduction in the cytotoxic effect caused by A. baumannii on epithelial cells, suggesting that phospholipase C is important for virulence. Overall, our results indicate the power of applying RNA-Seq to identify key modulators of bacterial pathogenesis. We suggest that the effect of ethanol on the virulence of A. baumannii is multifactorial and includes a general stress response and other specific components such as phospholipase C.
url https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/20368969/pdf/?tool=EBI
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