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Zinsli, L. V.

Publications and source records attributed to Zinsli, L. V..

2 recordsLinked to original sources

A teichoic acid-like wall modification associated with immune suppression is socially regulated in Streptococcus pyogenes

Streptococcus pyogenes (Group A Streptococcus, GAS) is a human-restricted pathogen with a range of clinical manifestations and worldwide prevalence. The GAS Rgg2/Rgg3 quorum sensing (QS) system, a cell-to-cell communication network, modifies the cell surface resulting in increased lysozyme resistance, biofilm formation, and expression of the qim operon that is responsible for modulation of innate immune responses in macrophages. The operon encodes 10 genes with predicted homology to enzymes involved in bacterial cell surface-associated carbohydrate and teichoic acid biosynthesis pathways. Comparing extracts of GAS cell wall polysaccharides between wildtype and operon mutants determined that the QS-induced genes modify the S. pyogenes cell surface by adding a wall teichoic acid-like moiety of N-acetylglucosamine-linked ribitol (GlcNAc-Rbo). A fluorescently labeled phage receptor-binding protein, RBP-13-GFP, that recognizes GlcNAc-decorated ribitol phosphate repeats, bound to the GAS surface only when qim expression was induced. Deletion of the qim operon eliminated RBP-13-GFP binding, diminished bacterial colonization, and significantly attenuated GAS pathogenesis in a murine skin infection model. These findings indicate that GAS has evolved a strategy to evade innate immune response by presenting a previously unknown carbohydrate moiety upon quorum sensing. IMPORTANCEStreptococcus pyogenes is a major human pathogen, responsible for diverse clinical manifestations of both superficial and invasive infections and can lead to post-infection sequelae like rheumatic heart disease whose prevalence on a global scale rivals the most serious pathogens. Invasive S. pyogenes infections are currently on the rise worldwide, notably correlating with increasing pediatric cases of scarlet fever and enhancing the concern for long term complications. There is much that remains unknown about S. pyogenes virulence and pathogenicity, and studies focused on understanding basic systems regulating virulence factors could lead to better therapeutics and translational research. We show here one such example, where a bacterial communication system regulating a virulence mechanism relevant to in vivo infection confers the ability to alter the host innate immune response. We find that modifications to the cell wall arise when this virulence system is activated that has a direct role in host-pathogen interactions. Further research into this system could provide a mechanism for disruption and serve to treat S. pyogenes infection.

microbiology↗

Heterodimerization of Endolysin Isoforms During Bacterial Infection by Staphylococcal Phage {varphi}2638A

AO_SCPLOWBSTRACTC_SCPLOWBacteriophage endolysins targeting Gram-positive bacteria typically feature a modular architecture of one or more enzymatically active domains (EADs) and cell wall binding domains (CBDs). Several endolysins also feature internal translational start sites (iTSSs) that produce short variant (SV) isoforms alongside the full-length (FL) endolysin. While the lytic activity of endolysins and their isoforms has been extensively studied as exogenous agents, the purpose behind producing the SV isoform during the phage infection cycle remains to be explored. In this study, we used staphylococcal phage {varphi}2638A as a model to determine the interplay between its full-length endolysin, Ply2638A, and its SV isoform during phage infection. X-ray crystallography structures and AlphaFold-generated models enabled elucidation of individual functions of the M23 endopeptidase, central amidase, and SH3b domains of Ply2638A. Production of the SV isoform (amidase and SH3b) was confirmed during phage infection and shown to form a heterodimer complex with Ply2638A via inter-amidase domain interactions. Using genetically engineered phage variants, we show that production of both isoforms provides an advantage during phage infection as phages producing only one isoform presented impaired lytic activity, which could be partly restored through recombinant protein complementation of the missing isoform. Importantly, when applied as an antimicrobial protein against Staphylococcus aureus in culture, the activity of Ply2638A remained constant regardless of SV isoform complementation. Drawing from our findings, we propose that SV isoform production provides its biological advantage upon endolysin entry to the periplasmic space to ensure optimal peptidoglycan degradation prior to cell wall lysis and progeny phage release.

molecular biology↗