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Following in Real Time the Impact of Pneumococcal Virulence Factors in an Acute Mouse Pneumonia Model Using Bioluminescent Bacteria
Published on: February 23, 2014
Genome-wide identification of Streptococcus pneumoniae genes essential for bacterial replication during experimental
T E Molzen1, P Burghout, H J Bootsma
1Department of Clinical Microbiology, Copenhagen University Hospital, Herlev Ringvej 75, 2730 Herlev, Denmark. molzen@dadlnet.dk
Abstract:
Meningitis is the most serious of invasive infections caused by the Gram-positive bacterium Streptococcus pneumoniae. Vaccines protect only against a limited number of serotypes, and evolving bacterial resistance to antimicrobials impedes treatment. Further insight into the molecular pathogenesis of invasive pneumococcal disease is required in order to enable the development of new or adjunctive treatments and/or pneumococcal vaccines that are efficient across serotypes. We applied genomic array footprinting (GAF) in the search for S. pneumoniae genes that are essential during experimental meningitis. A total of 6,000 independent TIGR4 marinerT7 transposon mutants distributed over four libraries were injected intracisternally into rabbits, and cerebrospinal fluid (CSF) was collected after 3, 9, and 15 h. Microarray analysis of mutant-specific probes from CSF samples and inocula identified 82 and 11 genes mutants of which had become attenuated or enriched, respectively, during infection. The results point to essential roles for capsular polysaccharides, nutrient uptake, and amino acid biosynthesis in bacterial replication during experimental meningitis. The GAF phenotype of a subset of identified targets was followed up by detailed studies of directed mutants in competitive and noncompetitive infection models of experimental rat meningitis. It appeared that adenylosuccinate synthetase, flavodoxin, and LivJ, the substrate binding protein of a branched-chain amino acid ABC transporter, are relevant as targets for future therapy and prevention of pneumococcal meningitis, since their mutants were attenuated in both models of infection as well as in competitive growth in human cerebrospinal fluid in vitro.
Insights
Genomic array footprinting identified essential Streptococcus pneumoniae genes for meningitis. Targeting adenylosuccinate synthetase, flavodoxin, and LivJ may offer new treatments for pneumococcal meningitis.
Area of Science:
- Microbiology
- Genomics
- Infectious Diseases
Background:
- Meningitis caused by Streptococcus pneumoniae is a severe infection.
- Current vaccines have limited serotype coverage, and antimicrobial resistance is increasing.
- Understanding pneumococcal disease pathogenesis is crucial for developing new therapies and broad-spectrum vaccines.
Purpose of the Study:
- To identify essential Streptococcus pneumoniae genes during experimental meningitis using genomic array footprinting (GAF).
- To discover novel therapeutic targets for invasive pneumococcal disease.
Main Methods:
- Genomic array footprinting (GAF) was used to screen 6,000 transposon mutants of Streptococcus pneumoniae TIGR4 in a rabbit meningitis model.
- Cerebrospinal fluid (CSF) was collected at multiple time points for microarray analysis.
- Mutant attenuation and enrichment during infection were assessed.
- Key gene targets were further validated in rat meningitis models and in vitro growth assays.
Main Results:
- GAF identified 82 attenuated and 11 enriched genes in Streptococcus pneumoniae during experimental meningitis.
- Essential roles were highlighted for capsular polysaccharides, nutrient uptake, and amino acid biosynthesis.
- Mutants lacking adenylosuccinate synthetase, flavodoxin, and LivJ showed significant attenuation in infection models and in vitro.
Conclusions:
- Adenylosuccinate synthetase, flavodoxin, and LivJ are critical for Streptococcus pneumoniae survival and replication during meningitis.
- These genes represent promising targets for developing new anti-pneumococcal therapies and vaccines.
- GAF is an effective tool for identifying virulence factors in bacterial pathogens.
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