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Preusse, M.

Publications and source records attributed to Preusse, M..

2 recordsLinked to original sources

Loss of restriction-modification methyltransferases drives persistence to fluoroquinolones in Pseudomonas aeruginosa

The resurgence of phage therapy has renewed interest in the interplay between phage resistance and antibiotic susceptibility and has stimulated research in the emergent field of non-canonical cellular functions carried out by defence systems. Yet it remains largely unknown whether intracellular antiphage defence systems influence bacterial physiology, resistance or persistence to antibiotics. Here we discovered that besides its canonical antiphage defence function, the type I restriction modification (RM) system profoundly affects the physiology of the opportunistic pathogen Pseudomonas aeruginosa. Deletion of the type I RM methyltransferase HsdM reduces the size of the bacterial nucleoid and delays DNA replication initiation and exit from lag phase in P. aeruginosa PAO1. Crucially, P. aeruginosa strains isolated from patients with cystic fibrosis (CF) and lacking the RM type I system also display slower growth compared to strains isolated from other sites of infections and encoding this system. Deletion of HsdM selectively increases the levels of persisters that survive treatment with fluoroquinolones by displaying enhanced SOS response but without acquiring resistance. Importantly, we measured elevated persistence to fluoroquinolones also in P. aeruginosa CF isolates lacking the type I RM system, providing a functional link between RM systems, slow growth and persistence to fluoroquinolones. Together these findings open a new way of approaching bacterial susceptibility to antibiotics, bringing antiphage defence systems in a forward-facing position in this field.

microbiology↗

Itaconate and derivatives reduce interferon responses and inflammation in influenza A infection

Itaconate has recently emerged as a metabolite with immunomodulatory properties. We evaluated effects of endogenous itaconate and exogenous itaconate, dimethyl-, and 4-octyl-itaconate on host responses to influenza A virus infection. Infection induced ACOD1 (the enzyme catalyzing itaconate synthesis) mRNA in monocytes and macrophages, which correlated with viral replication and was abrogated by itaconate treatment. Pulmonary inflammation and weight loss were greater in Acod1-/- than wild-type mice, and ectopic synthesis of itaconate in human epithelial cells reduced infection-induced inflammation. The compounds induced different recruitment programs in infected human macrophages, and transcriptome profiling revealed that they reversed infection-triggered interferon responses and modulated inflammation in cell lines, PBMC, and lung tissue. Single-cell RNA sequencing of PBMC revealed that infection induced ACOD1 exclusively in monocytes, whereas treatment silenced IFN-responses in monocytes, lymphocytes, and NK cells. Viral replication did not increase under treatment despite the dramatically repressed IFN responses, but 4-octyl itaconate inhibited viral transcription in PBMC. The results reveal dramatic reprogramming of host responses by itaconate and derivatives and their potential as adjunct treatments for hyperinflammation in viral infection.

immunology↗