Influenza A Virus Coinfection Alters Streptococcus pneumoniae Gene Expression during Upper Respiratory Tract
Noah A Nutter1, Alicia Costa-Terryll1, Lance M Miller2
1Department of Microbiology and Immunology, Wake Forest School of Medicine, Winston-Salem, NC.
Abstract:
Streptococcus pneumoniae (Spn) asymptomatically colonizes the upper respiratory tract (URT), a niche from which it can transmit to another host or cause invasive disease in the same host. The in vivo transcriptional adaptations that Spn undergoes during nasopharyngeal colonization, particularly during influenza A virus (IAV) coinfection, are poorly understood. Here, we leveraged an established infant mouse model of colonization, shedding, and transmission to perform genome-wide transcriptomic profiling of Spn during mono- and during IAV co-infection. Compared with broth-grown controls, pneumococci isolated from the URT exhibited distinct transcriptional programs, with over 200 genes differentially expressed across time points. Genes involved in carbohydrate uptake and metabolism, glycan degradation, amino sugar and nucleotide sugar metabolism, and amino acid biosynthesis were consistently enriched during colonization, highlighting metabolic adaptation to the nasopharyngeal niche. In contrast, IAV coinfection induced a markedly distinct transcriptional signature, including upregulation of branched-chain amino acid biosynthesis, bacteriocin production, and phosphate acquisition systems. Notably, the pilus islet-1 locus was upregulated during Spn-IAV coinfection. Functional studies demonstrated that while the pilus was dispensable for colonization under mono- and coinfection conditions, it promoted high-shedding events and enhanced inflammatory responses during IAV coinfection. However, reduced inflammation and reduced high shedding events from pups inoculated with a pilus-deficient mutant did not alter transmission frequency in the infant mouse model. Collectively, our findings define the in vivo transcriptional landscape of Spn during URT colonization and reveal distinct bacterial adaptations during viral coinfection, providing insight into mechanisms that influence pneumococcal persistence, inflammation, and transmission.
Insights
Streptococcus pneumoniae adapts its gene expression for upper respiratory tract colonization. Influenza A virus coinfection triggers distinct bacterial adaptations, impacting inflammation and shedding but not transmission.
Area of Science:
- Microbiology
- Infectious Diseases
- Genomics
Background:
- Streptococcus pneumoniae (Spn) asymptomatically colonizes the upper respiratory tract (URT), serving as a reservoir for transmission and invasive disease.
- The in vivo transcriptional changes in Spn during URT colonization, especially during influenza A virus (IAV) coinfection, remain poorly understood.
Purpose of the Study:
- To elucidate the in vivo transcriptional adaptations of Spn during URT colonization and IAV coinfection.
- To investigate the role of bacterial gene expression in pneumococcal persistence, inflammation, and transmission.
Main Methods:
- Genome-wide transcriptomic profiling of Spn in an infant mouse model during monoinfection and IAV coinfection.
- Comparison of Spn gene expression in vivo versus in vitro (broth culture).
- Functional studies using pilus-deficient mutants to assess the role of specific genetic loci.
Main Results:
- Over 200 genes were differentially expressed in Spn during URT colonization, with enrichment in carbohydrate metabolism and amino acid biosynthesis.
- IAV coinfection induced a distinct transcriptional signature in Spn, including upregulation of bacteriocin production and phosphate acquisition.
- The pilus islet-1 locus was upregulated during Spn-IAV coinfection; while dispensable for colonization, it enhanced shedding and inflammation during coinfection.
Conclusions:
- Spn undergoes significant metabolic adaptation for nasopharyngeal colonization.
- IAV coinfection drives unique bacterial transcriptional responses, influencing host-pathogen interactions.
- While pilus influences shedding and inflammation, it does not alter transmission frequency in this model.
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