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Bakker, V. d.

Publications and source records attributed to Bakker, V. d..

2 recordsLinked to original sources

Epithelial innate immune sensing of pneumococci is inherently restricted to a small cellular minority across species and infection niches

Streptococcus pneumoniae colonises the nasopharynx asymptomatically yet causes life-threatening invasive disease. How it navigates early epithelial immune surveillance to cause disease remains unclear. Conventional innate immune models predict coordinated, population-wide epithelial responses to bacterial infection. Using single-cell RNA sequencing, RNA fluorescence in situ hybridization and in vivo mouse and zebrafish models, pneumococcal infection is instead shown to activate innate immune genes including chemokine, NF-{kappa}B regulatory, and prostaglandin pathway genes, in only 1-4% of lung epithelial cells. This restriction is seemingly pneumococcal-specific as Escherichia coli triggers responses in over 40% of the same cells. Strikingly, nasopharyngeal epithelial cells show complete immune silence to pneumococci while responding robustly to E. coli and Staphylococcus aureus, suggesting niche-specific immune evasion. Additionally, pharmacological inhibition of COX-2 significantly increased mortality in a zebrafish meningitis model, identifying prostaglandin signalling as a protective host response during invasive disease. Competence-associated surface remodelling contributes modestly and incrementally to immune restriction, while the predominant dampening is competence-independent. These findings challenge canonical epithelial immunity models against bacterial infection and provide a cellular framework for understanding pneumococcal commensalism and pathogenesis. Significance statementClassical innate immune models predict that bacterial infection triggers coordinated, population-wide transcriptional responses across the epithelium. Using single-cell RNA sequencing, RNA fluorescence in situ hybridization, and in vivo zebrafish and mouse models, we show that Streptococcus pneumoniae, responsible for over one million deaths annually, activates innate immune genes in only 1-4% of lung epithelial cells. Escherichia coli triggers responses in over 40% of the same cells, demonstrating this restriction is pneumococcal-specific. Nasopharyngeal epithelial cells, the bacteriums primary colonization niche, show complete immune silence to pneumococci, suggesting niche-specific evolutionary adaptation. The prostaglandin pathway is identified as a protective host response during invasive disease. These findings challenge canonical models of epithelial immunity and provide a cellular framework for pneumococcal commensalism and pathogenesis.

microbiology↗

Genome-wide CRISPRi-seq identified ferredoxin-NADP reductase FprB as a synergistic target for gallium therapy in Pseudomonas aeruginosa

With the rise of antibiotic-resistant bacteria, non-antibiotic therapies like gallium are increasingly gaining attention. Gallium ions exhibit potent activity against multidrug-resistant bacteria and intravenous gallium nitrite is under phase 2 clinical trials to treat chronic Pseudomonas aeruginosa infections in cystic fibrosis patients. However, its clinical efficacy is constrained by the achievable peak concentration in human tissue. To address this limitation, we applied a genome-wide CRISPR interference approach (CRISPRi-seq), to identify potential synergistic targets with gallium. Through the systemic screening, we classified the essential genes by response time and growth reduction, pinpointing the most vulnerable therapeutic targets in this species. In addition, we identified a highly conserved gene fprB, encoding a ferredoxin-NADP+ reductase, the downregulation of which dramatically sensitized the cells to gallium. Using a null mutant, we confirmed the loss of fprB lowers the minimum inhibitory concentration of gallium from 320 {micro}M to 10 {micro}M and shifted galliums mode of action from bacteriostatic to bactericidal. Further investigation revealed that FprB plays a critical role in modulating oxidative stress induced by gallium, via control of the iron homeostasis and reactive oxygen species accumulation. Deleting fprB also enhanced galliums efficacy against biofilms formation and improved outcomes in murine lung infection model of P. aeruginosa, suggesting FprB as a promising drug target in combination with gallium. Overall, our data showed CRISPRi-seq as a powerful tool for systematic genetic analysis of P. aeruginosa, advancing identification of novel therapeutic targets.

microbiology↗