Investigating the antibacterial and pro-coagulant activity of neutrophil-derived extracellular vesicles induced by phagocytosis of S. aureus 2254459
Abstract
Abstract Introduction Extracellular vesicles (EVs) are small nanosized particles with the ability to influence host-pathogen interactions. Their function depends on several factors, including the status of the EV-releasing cell type. For example, EVs produced from neutrophils (PMN) challenged with S. aureus (PMN-SA-EVs) initiate the intrinsic pathway of coagulation, but EVs released spontaneously from neutrophils do not. The goal of our work was identifying the mechanism for the pro-coagulant activity and identify other effects PMN-SA-EVs have on the host response. Methods To test whether an EV surface protein was required for pro-coagulant activity, we treated PMN-SA-EVs with proteinase K (PK) and measured thrombin generation (TG). We also explored whether PMN-SA-EVs had antibacterial properties. Toward this goal, we investigated the effect of EVs on transcription in monocyte-derived macrophages and on the growth of bacteria. Macrophages were treated with spontaneously released PMN-EVs or PMN-SA-EVs. Results In support of protein involvement, PK treatment of PMN-SA-EVs reduced TG.There were minimal transcriptional differences between the two conditions, with transcriptional responses corresponding to donor identity instead of treatment groups. In contrast, EVs had a direct effect on bacteria with PMN-SA-EVs reducing growth of new S. aureus cultures. Conclusion This work better elucidates the role of PMN-SA-EVs in host-pathogen interactions, and our future efforts aim to uncover the mechanisms in more detail. Funding Source William and Linda Frost Fund Topic Categories Innate Immune Responses and Host Defense: Cellular Mechanisms (INC)
Article Details
Journal Info
The Journal of Immunology
American Association of Immunologists
Authors (4)
Emmerson Heery
California Polytechnic State Univ
Elizabeth Manis
California Polytechnic State University SLO
Sophia Arias
California Polytechnic State University SLO
Mallary Greenlee-Wacker
California Polytechnic State University