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Biology subjects

McGuinness, D.

Publications and source records attributed to McGuinness, D..

2 recordsLinked to original sources

Bacterial histone-like proteins released during antibiotic treatment mediate vascular injury in meningococcal sepsis.

Vascular injury and coagulopathy are key drivers of mortality in bacterial sepsis. In Neisseria meningitidis infection, endothelial adhesion and thrombosis cause the characteristic petechial rash and, in the most severe cases, purpura fulminans. Although antibiotics rapidly kill bacteria, inflammation and vascular injury often persist or worsen after bacterial clearance, suggesting ongoing toxicity from released bacterial components. Here we identify bacterial histone-like proteins (HLPs), small positively charged DNA-binding proteins conserved across bacterial species, as previously unrecognized mediators of vascular damage. In vitro HLPs are released following antibiotic exposure, disrupting endothelial integrity. In patients with severe sepsis, they are detectable in plasma and tissue, colocalising with areas of vascular leak and coagulopathy. Non-anticoagulant heparins and anti-HLP antibodies neutralize HLP-induced endothelial disruption and toxicity in vitro and in vivo. These findings reveal HLPs as antibiotic-released bacterial toxins and suggest new therapeutic strategies to prevent vascular injury in sepsis. One sentence summaryAntibiotic treatment of meningococcal and other sepsis causative bacteria triggers the release of histone-like proteins (HLPs) that damage the endothelium and drive coagulopathy, but these effects can be neutralized by non-anticoagulant heparins or anti-HLP antibodies.

microbiology↗

The murine intestinal pathobiont Helicobacter hepaticus attenuates DSS colitis in a CD4+ T cell-dependent manner

The host immune system is fundamentally shaped by its resident microbiota; however, much remains unknown about how individual microbial species contribute to health and disease. Helicobacter hepaticus (Hh) is a member of the murine intestinal microbiota associated with colitis in immunodeficient mice, despite driving dominant immune regulatory responses in normal hosts which allow colonization without pathology. However, whether this colonization influences intestinal immune homeostasis more widely remains unexplored. Here, we report that Hh colonization confers a disease protective effect on DSS colitis, attenuating intestinal inflammation and other disease parameters. Disease attenuation required persistent colonization and was dependent on host CD4+ T cells. We further show that Hh colonization promotes a conserved anti-inflammatory transcriptional programme across several effector and regulatory intestinal CD4+ T cell subsets. Thus, although persistent stimulation of host immune responses allows the host to tolerate pathobionts like Hh, this is compensated by the promotion of tissue-protective immunological conditioning.

immunology↗