Dynamic Pneumococcal Genetic Adaptations Support Bacterial Growth and Inflammation during Coinfection with Influenza
Amanda P Smith1, Lindey C Lane1, Tim van Opijnen2
1Department of Pediatrics, University of Tennessee Health Science Center, Memphis, Tennessee, USA.
Abstract:
Streptococcus pneumoniae (pneumococcus) is one of the primary bacterial pathogens that complicates influenza virus infections. These bacterial coinfections increase influenza-associated morbidity and mortality through a number of immunological and viral-mediated mechanisms, but the specific bacterial genes that contribute to postinfluenza pathogenicity are not known. Here, we used genome-wide transposon mutagenesis (Tn-Seq) to reveal bacterial genes that confer improved fitness in influenza virus-infected hosts. The majority of the 32 genes identified are involved in bacterial metabolism, including nucleotide biosynthesis, amino acid biosynthesis, protein translation, and membrane transport. We generated mutants with single-gene deletions (SGD) of five of the genes identified, SPD1414, SPD2047 (cbiO1), SPD0058 (purD), SPD1098, and SPD0822 (proB), to investigate their effects on in vivo fitness, disease severity, and host immune responses. The growth of the SGD mutants was slightly attenuated in vitro and in vivo, but each still grew to high titers in the lungs of mock- and influenza virus-infected hosts. Despite high bacterial loads, mortality was significantly reduced or delayed with all SGD mutants. Time-dependent reductions in pulmonary neutrophils, inflammatory macrophages, and select proinflammatory cytokines and chemokines were also observed. Immunohistochemical staining further revealed altered neutrophil distribution with reduced degeneration in the lungs of influenza virus-SGD mutant-coinfected animals. These studies demonstrate a critical role for specific bacterial genes and for bacterial metabolism in driving virulence and modulating immune function during influenza-associated bacterial pneumonia.
Insights
Identifying specific bacterial genes involved in Streptococcus pneumoniae pathogenicity during influenza coinfection is crucial. This study reveals bacterial metabolism genes that, when mutated, significantly reduce mortality and alter host immune responses in influenza-infected mice.
Area of Science:
- Microbiology
- Immunology
- Genetics
Background:
- * Streptococcus pneumoniae (pneumococcus) is a major bacterial pathogen complicating influenza virus infections.
- * Coinfections increase influenza-associated morbidity and mortality, but specific bacterial genes driving pathogenicity remain unknown.
Purpose of the Study:
- * To identify bacterial genes that enhance Streptococcus pneumoniae fitness during influenza virus infection using genome-wide screening.
- * To investigate the role of identified bacterial genes in virulence, disease severity, and host immune responses during coinfection.
Main Methods:
- * Genome-wide transposon sequencing (Tn-Seq) to screen for bacterial genes conferring fitness advantages in influenza-infected hosts.
- * Generation and characterization of single-gene deletion (SGD) mutants for key identified genes.
- * Assessment of bacterial growth, host mortality, immune cell infiltration (neutrophils, macrophages), and cytokine/chemokine profiles in vivo.
Main Results:
- * 32 bacterial genes conferring improved fitness during influenza infection were identified, many involved in metabolism (nucleotide/amino acid biosynthesis, protein translation, membrane transport).
- * SGD mutants showed slightly attenuated growth but reached high titers in lungs.
- * All SGD mutants significantly reduced or delayed mortality in coinfected mice.
- * Pulmonary neutrophils, inflammatory macrophages, and proinflammatory mediators were reduced, with altered neutrophil distribution.
Conclusions:
- * Specific bacterial genes, particularly those involved in metabolism, are critical for Streptococcus pneumoniae virulence during influenza coinfection.
- * Targeting these bacterial metabolic pathways could be a strategy to mitigate severe outcomes of influenza-bacterial pneumonia.
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