中性粒细胞胞外陷阱
体外
核小体
DNA
免疫学
脱氧核糖核酸酶ⅰ
组蛋白
凝结
混凝级联
细胞生物学
分子生物学
化学
生物
医学
炎症
生物化学
内科学
血小板
凝血酶
基序列
作者
Denis F. Noubouossie,Matthew F. Whelihan,Yuan-Bin Yu,Erica Sparkenbaugh,Rafał Pawliński,Dougald M. Monroe,Nigel S. Key
出处
期刊:Blood
[Elsevier BV]
日期:2016-12-05
卷期号:129 (8): 1021-1029
被引量:242
标识
DOI:10.1182/blood-2016-06-722298
摘要
NETosis is a physiologic process in which neutrophils release their nuclear material in the form of neutrophil extracellular traps (NETs). NETs have been reported to directly promote thrombosis in animal models. Although the effects of purified NET components including DNA, histone proteins, and neutrophil enzymes on coagulation have been characterized, the mechanism by which intact NETs promote thrombosis is largely unknown. In this study, human neutrophils were stimulated to produce NETs in platelet-free plasma (PFP) or in buffer using phorbol myristate actetate or calcium ionophore. DNA and histone proteins were also separately purified from normal human neutrophils and used to reconstitute chromatin using a salt-gradient dialysis method. Neutrophil stimulation resulted in robust NET release. In recalcified PFP, purified DNA triggered contact-dependent thrombin generation (TG) and amplified TG initiated by low concentrations of tissue factor. Similarly, in a buffer milieu, DNA initiated the contact pathway and amplified thrombin-dependent factor XI activation. Recombinant human histones H3 and H4 triggered TG in recalcified human plasma in a platelet-dependent manner. In contrast, neither intact NETs, reconstituted chromatin, individual nucleosome particles, nor octameric core histones reproduced any of these procoagulant effects. We conclude that unlike DNA or individual histone proteins, human intact NETs do not directly initiate or amplify coagulation in vitro. This difference is likely explained by the complex histone-histone and histone-DNA interactions within the nucleosome unit and higher-order supercoiled chromatin leading to neutralization of the negative charges on polyanionic DNA and modification of the binding properties of individual histone proteins.
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