Streptococcus anginosus (S. anginosus) has long been considered a commensal of the human microbiome but is increasingly associated with invasive infections and malignant processes. For understanding evolutionary dynamics, it is essential to investigate its mobile genetic elements, such as prophages, which are known to impact virulence, antibiotic resistance, and horizontal gene transfer. While many S. anginosus strains carry prophages, lysogen induction by external stimuli has not been demonstrated, and phage-mediated infection or lysis of this species has not been reported. To analyze the prevalence and diversity of prophages in S. anginosus genomes, we screened 140 clinical isolates by PCR revealing that 31.4% of strains were lysogenic. Correlating these findings with the presence of CRISPR immunity, we observed that S. anginosus strains carrying a CRISPR-Cas type II-A system were less likely to harbor prophages. Using a PCR-based approach, the spontaneous excision of several prophages of S. anginosus could be demonstrated and a fluoroquinolone-triggered prophage induction could successfully be established. Induction by ciprofloxacin and levofloxacin resulted in significant, concentration-dependent phage release and bacterial lysis. Transmission electron microscopy revealed viruses exhibiting the morphology characteristic of siphoviruses. Further analysis of the susceptibility of S. anginosus isolates and other oral and pyogenic streptococci to the isolated S. anginosus phages demonstrated a broad host range and the potential for cross-species horizontal gene transfer. In conclusion, a lytic cycle of S. anginosus phages could be induced, highlighting their functional relevance to pathogenicity and horizontal gene transfer, while demonstrating potential clinical implications of antibiotic-mediated prophage activation.
Dorina Haider, Salome Barbakadze, Julia P Mosler et al.· bioRxiv· 0 citations
The intracellular cilia assembly pathway is a complex, multistep process that requires the continuous and coordinated incorporation of membrane material. However, how membrane remodeling occurs during early ciliogenesis is not yet understood. Moreover, the identity of the organelle(s) that supply membrane material for the nascent cilium has yet to be determined. Here, we extend the current model of primary cilia formation by showing that randomly attached distal appendage vesicles and tubules fuse laterally to generate a doughnut-shaped membrane structure. Centripetal fusion events follow to close the central hole. Our data demonstrate that both the Golgi apparatus and endocytotic pathways independently contribute to ciliogenesis. We identify the endocytotic protein GRAF1 as being essential during the early stages of ciliogenesis and for the delivery of plasma membrane-derived material to the developing ciliary membrane. Our three-dimensional ultrastructural analysis uncovers previously unrecognized intermediate stages in the intracellular cilia assembly pathway with GRAF1 as a regulator of ciliogenesis. A three-dimensional ultrastructural analysis reveals previously unrecognized intermediate stages in the formation of primary cilia. It is demonstrated that both the endocytotic protein GRAF1 and the Golgi apparatus contribute to the intracellular pathway of ciliogenesis.
Kerstin N. Schmidt, Korbinian Buerger, Olga Maier et al.· Nature Communications· 0 citations
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