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A Fast and Reliable Pipeline for Bacterial Transcriptome Analysis Case study: Serine-dependent Gene Regulation in Streptococcus pneumoniae
Published on: April 25, 2015
Transcriptional analysis of the acid tolerance response in Streptococcus pneumoniae
Antonio J Martín-Galiano1, Karin Overweg2, Maria J Ferrándiz1
1Unidad de Genética Bacteriana, Centro Nacional de Microbiología, Instituto de Salud Carlos III, 28220, Majadahonda, Madrid, Spain.
Abstract:
Streptococcus pneumoniae, one of the major causes of morbidity and mortality in humans, faces a range of potentially acidic conditions in the middle and late stages of growth in vitro, in diverse human fluids during the infection process, and in biofilms present in the nasopharynx of carriers. S. pneumoniae was shown to develop a weak acid tolerance response (ATR), where cells previously exposed to sublethal pHs (5.8-6.6) showed an increased survival rate of up to one order of magnitude after challenge at the lethal pH (4.4, survival rate of 10(-4)). Moreover, the survival after challenge of stationary phase cells at pH 4.4 was three orders of magnitude higher than that of cells taken from the exponential phase, due to the production of lactic acid during growth and increasing acidification of the growth medium until stationary phase. Global expression analysis after short-term (5, 15 and 30 min, the adaptation phase) and long-term (the maintenance phase) acidic shock (pH 6.0) was performed by microarray experiments, and the results were validated by real-time RT-PCR. Out of a total of 126 genes responding to acidification, 59 and 37 were specific to the adaptation phase and maintenance phase, respectively, and 30 were common to both periods. In the adaptation phase, both up- and down-regulation of gene transcripts was observed (38 and 21 genes, respectively), whereas in the maintenance phase most of the affected genes were down-regulated (34 out of 37). Genes involved in protein fate (including those involved in the protection of the protein native structure) and transport (including transporters of manganese and iron) were overrepresented among the genes affected by acidification, 8.7 and 24.6 % of the acid-responsive genes compared to 2.8 % and 9.6 % of the genome complement, respectively. Cross-regulation with the response to oxidative and osmotic stress was observed. Potential regulatory motifs involved in the ATR were identified in the promoter regions of some of the regulated genes.
Insights
Streptococcus pneumoniae develops acid tolerance by upregulating genes for protein protection and metal transport. Stationary phase cells show higher survival in acidic conditions due to lactic acid production.
Area of Science:
- Microbiology
- Molecular Biology
Background:
- Streptococcus pneumoniae causes significant human morbidity and mortality.
- The bacterium encounters acidic environments during infection and in carrier biofilms.
- Acidic conditions pose a challenge to bacterial survival and growth.
Purpose of the Study:
- To investigate the weak acid tolerance response (ATR) in Streptococcus pneumoniae.
- To identify genes and pathways involved in acid adaptation and survival.
- To understand the physiological basis for increased acid resistance.
Main Methods:
- Exposure of Streptococcus pneumoniae to sublethal and lethal acidic pH conditions.
- Microarray analysis to assess global gene expression changes during acid shock.
- Real-time RT-PCR for validation of gene expression data.
- Comparison of acid tolerance between exponential and stationary phase cells.
Main Results:
- Pre-exposure to sublethal pH (5.8-6.6) increased survival by one order of magnitude at lethal pH (4.4).
- Stationary phase cells exhibited three orders of magnitude higher survival than exponential phase cells at pH 4.4.
- Global gene expression analysis revealed 126 acid-responsive genes, with distinct sets for adaptation and maintenance phases.
- Genes involved in protein fate and manganese/iron transport were significantly overrepresented among acid-responsive genes.
- Cross-regulation with oxidative and osmotic stress responses was observed.
Conclusions:
- Streptococcus pneumoniae possesses a robust weak acid tolerance response crucial for survival in acidic environments.
- The ATR involves coordinated regulation of genes related to protein homeostasis and nutrient transport.
- Lactic acid production and accumulation contribute to increased acid resistance in stationary phase.
- Understanding the ATR provides insights into S. pneumoniae pathogenesis and potential therapeutic targets.
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