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von Bernuth, H.

Publications and source records attributed to von Bernuth, H..

2 recordsLinked to original sources

Candida albicans promotes neutrophil extracellular trap formation and leukotoxic hypercitrullination via the peptide toxin candidalysin.

The cytolytic peptide toxin candidalysin is secreted by the invasive, hyphal form of the human fungal pathogen, Candida albicans. Candidalysin is essential for inducing host cell damage during mucosal and systemic C. albicans infections, resulting in neutrophil recruitment. Neutrophil influx to C. albicans-infected tissue is critical for limiting fungal growth and preventing the fungal dissemination. Here, we demonstrate that candidalysin secreted by hyphae promotes the stimulation of neutrophil extracellular traps (NETs), while synthetic candidalysin triggers a distinct mechanism for NET-like structures (NLS), which are more compact and less fibrous than canonical NETs. Candidalysin activates NADPH oxidase and calcium influx, with both processes contributing to morphological changes in neutrophils resulting in NLS formation. NLS are induced by leukotoxic hypercitrullination, which is governed by protein arginine deaminase 4 activation via calcium influx and initiation of intracellular signalling events. However, activation of signalling by candidalysin does not suffice to trigger downstream events essential for NET formation, as demonstrated by lack of lamin A/C phosphorylation, an event required for activation of cyclin-dependent kinases that are crucial for NET release. Interestingly, exposure to candidalysin does not immediately restrict the capability of neutrophils to produce reactive oxygen species (ROS), nor to phagocytose particles. Instead, candidalysin triggers ROS production, calcium influx and subsequent activation of downstream signalling that drive morphological alteration and the formation of NLS in a dose- and time-dependent manner. Notably, candidalysin-triggered NLS demonstrate anti-Candida activity, which is resistant to nuclease treatment and dependent on the deprivation of Zn2+. This study reveals that C. albicans hyphae releasing candidalysin concurrently trigger canonical NETs and NLS, which together form a fibrous sticky network that entangles C. albicans hyphae and inhibits their growth. Importantly, this explains discrepancies of previous studies demonstrating that neutrophil-derived extracellular chromatin structures triggered by C. albicans can be both dependent and independent of ROS. Our data also demonstrate that while candidalysin hampers neutrophil function, the toxin also increases the capability of neutrophils to entangle hyphae and to restrict their growth, reflecting the importance of human neutrophils in controlling the dissemination of C. albicans.

immunology↗

Patients with recurrent PVL+-Staphylococcus aureus infections show enhanced sensitivity to PVL-mediated formation of atypical NETs

Staphylococcus aureus (S. aureus) strains that produce the toxin Panton-Valentine leukocidin (PVL; PVL-SA) frequently cause recurrent skin and soft tissue infections (SSTI). PVL binds to and kills human neutrophils, resulting in the formation of neutrophil extracellular traps, but the pathomechanism has not been extensively studied. Furthermore, it is unclear why some individuals colonized with PVL-SA suffer from recurring infections whereas others are asymptomatic. We thus aimed to (a) investigate how PVL exerts its pathogenicity on neutrophils and (b) identify factors that could help to explain the predisposition of patients with recurring infections. We provide genetic and pharmacological evidence that PVL-induced NET formation is independent of NADPH-oxidase and reactive oxygen species (ROS) production. Moreover, through NET proteome analysis we identified that the protein content of PVL-induced NETs is different from NETs induced by mitogen or the microbial toxin nigericin. The abundance of the proteins cathelicidin (CAMP), elastase (NE), and proteinase 3 (PRTN3) was lower on PVL-induced NETs, and as such they were unable to kill S. aureus. Furthermore, we found that neutrophils from affected patients express higher levels of CD45, one of the PVL receptors, and are more susceptible to be killed at a low PVL concentration than control neutrophils. Neutrophils from patients that suffer from recurring PVL-positive infections may thus be more sensitive to PVL-induced NET formation, which might impair their ability to combat the infection. ImportanceIndividuals colonized by Staphylococcus aureus strains that produce Panton-Valentine leukocidin (PVL-SA) often present with recurrent skin and soft-tissue infections, whilst other individuals remain asymptomatic. PVL is a toxin that kills neutrophils, which results in the formation of neutrophil extracellular traps. Traps induced by other stimuli are known to be toxic to S. aureus. We found however that NETs specifically induced by PVL are not toxic to S. aureus. Furthermore, we show that neutrophils from individuals that suffer from recurring PVL-SA infections are more sensitive to PVL-induced NET formation compared to healthy individuals. The significance of our work is in identifying a mechanism through which PVL-SA may actively counter the engagement of neutrophils. Moreover, we identified that patients with recuring PVL-SA infections may be more sensitive to this mechanism, which may help to explain their clinical condition and might provide avenues for future treatment development.

immunology↗