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Hamamoto, H.

Publications and source records attributed to Hamamoto, H..

2 recordsLinked to original sources

Uncovering Staphylococcus aureus genes with roles in pathogenicity by silkworm infection model

The regulatory network of virulence factors production by Staphylococcus aureus, an opportunistic pathogen, is incompletely understood, and the functions of many uncharacterized genes in its genome remain to be uncovered. We screened 380 function unassigned genes disrupted mutants of the community-acquired methicillin-resistant S. aureus USA300 for pathogenicity using silkworms and identified 11 strains with reduced silkworm killing ability. Nine out of the 11 strains displayed reduced virulence in the mouse model as evidenced by reduced colony-forming units in organs of the infected mice. Three of the identified gene-disrupted mutants had reduced hemolytic activity, one among the three also had reduced proteolytic activity and pigment production. These results suggest that silkworm model could identify the genes required for virulence in the mouse model. The newly identified genes involved in virulence in this study facilitates the further understanding of the pathogenicity of S. aureus.\n\nImportanceWe performed a large scale screening of mutants of Staphylococcus aureus with disruption in function unassigned genes using silkworm infection model and identified eleven genes required for full virulence in silkworm. Nine of the eleven genes were involved in virulence in mice and were previously not known to aggravate virulence of S. aureus. The results suggest that silkworm model is suitable for quantitative measurement of virulence, which is shared between silkworms and mammals.

microbiology

Transcriptomic profiling of Streptococcus pyogenes M1T1 strain in a mouse model of necrotizing fasciitis

Streptococcus pyogenes is a major cause of necrotizing fasciitis, a life-threatening subcutaneous soft-tissue infection. At the host infection site, the local environment and interaction between host and bacteria affect bacterial gene-expression profiles, but the S. pyogenes gene-expression pattern in necrotizing fasciitis remains unknown. In this study, we used a mouse model of necrotizing fasciitis and performed RNA-sequencing (RNA-seq) analysis of S. pyogenes M1T1 strain 5448 by using infected hindlimbs obtained at 24, 48, and 96 h post-infection. The RNA-seq analysis identified 483 bacterial genes whose expression was consistently altered in the infected hindlimbs as compared to their expression under in vitro conditions. The consistently enriched genes during infection included 306 genes encoding molecules involved in virulence, carbohydrate utilization, amino acid metabolism, trace-metal transport and vacuolar ATPase transport system. Surprisingly, drastic upregulation of 3 genes, encoding streptolysin S precursor (sagA), cysteine protease (speB), and secreted DNase (spd), was noted in the mouse model of necrotizing fasciitis (log2 fold-change values: >6.0, >9.4, and >7.1, respectively). Conversely, the consistently downregulated genes included 177 genes, containing genes associated with oxidative-stress response and cell division. These results suggest that S. pyogenes in necrotizing fasciitis changes its metabolism, decreases cell proliferation, and upregulates the expression of major toxins. Our findings could provide critical information for developing novel treatment strategies and vaccines for necrotizing fasciitis.\n\nAuthor summaryNecrotizing fasciitis, a life-threatening subcutaneous soft-tissue infection, principally caused by a Streptococcus pyogenes. At infection sites in hosts, bacterial pathogens are exposed to drastically changing environmental conditions and alter global gene expression patterns for survival and pathogenesis. However, there is no previous report about transcriptomic profiling of S. pyogenes in the necrotizing fasciitis. Here, we conducted comprehensive gene-expression analyses of S. pyogenes in the mouse model of necrotizing fasciitis at three distinct time points during infection. Our results indicated that S. pyogenes drastically upregulates the expression of virulence-associated genes and shifts metabolic-pathway usage during infection. The high-level expressions in particular of toxins, such as cytolysins, proteases, and nucleases, were observed at infection sites. In addition, the consistently enriched genes identified here included genes for metabolism of arginine and histidine, and carbohydrate uptake and utilization. Conversely, the genes associated with oxidative-stress response and cell division were consistently downregulated in the mouse model of necrotizing fasciitis. These data will provide useful information necessary for establishing novel treatment strategies (166 words).

microbiology