A Novel Mechanism of Rapid Nuclear Neutrophil Extracellular Trap Formation in Response to Staphylococcus aureus

中性粒细胞胞外陷阱 细胞生物学 金黄色葡萄球菌 生物 细胞质 细胞外 微生物学 生物物理学 化学 细菌 免疫学 遗传学 炎症
作者
Florian H. Pilsczek,Davide Salina,Karen Poon,Candace Fahey,Bryan G. Yipp,Christopher D. Sibley,Stephen M. Robbins,Francis H. Y. Green,Mike G. Surette,Motoyuki Sugai,M. Gabriela Bowden,Muzaffar Hussain,Kunyan Zhang,Paul Kubes
出处
期刊:Journal of Immunology [The American Association of Immunologists]
卷期号:185 (12): 7413-7425 被引量:1038
标识
DOI:10.4049/jimmunol.1000675
摘要

Abstract Neutrophil extracellular traps (NETs) are webs of DNA covered with antimicrobial molecules that constitute a newly described killing mechanism in innate immune defense. Previous publications reported that NETs take up to 3–4 h to form via an oxidant-dependent event that requires lytic death of neutrophils. In this study, we describe neutrophils responding uniquely to Staphylococcus aureus via a novel process of NET formation that did not require neutrophil lysis or even breach of the plasma membrane. The multilobular nucleus rapidly became rounded and condensed. During this process, we observed the separation of the inner and outer nuclear membranes and budding of vesicles, and the separated membranes and vesicles were filled with nuclear DNA. The vesicles were extruded intact into the extracellular space where they ruptured, and the chromatin was released. This entire process occurred via a unique, very rapid (5–60 min), oxidant-independent mechanism. Mitochondrial DNA constituted very little if any of these NETs. They did have a limited amount of proteolytic activity and were able to kill S. aureus. With time, the nuclear envelope ruptured, and DNA filled the cytoplasm presumably for later lytic NET production, but this was distinct from the vesicular release mechanism. Panton–Valentine leukocidin, autolysin, and a lipase were identified in supernatants with NET-inducing activity, but Panton–Valentine leukocidin was the dominant NET inducer. We describe a new mechanism of NET release that is very rapid and contributes to trapping and killing of S. aureus.
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