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自然杀伤细胞p30(NKp30)依赖性的丝状病毒感染的人树突状细胞的细胞溶解作用

NKp30-dependent cytolysis of filovirus-infected human dendritic cells.

作者信息

Fuller Claudette L, Ruthel Gordon, Warfield Kelly L, Swenson Dana L, Bosio Catharine M, Aman M Javad, Bavari Sina

机构信息

United States Army Medical Research Institute of Infectious Diseases, Frederick, MD 21702, USA.

出版信息

Cell Microbiol. 2007 Apr;9(4):962-76. doi: 10.1111/j.1462-5822.2006.00844.x.

Abstract

Understanding how protective innate immune responses are generated is crucial to defeating highly lethal emerging pathogens. Accumulating evidence suggests that potent innate immune responses are tightly linked to control of Ebola and Marburg filoviral infections. Here, we report that unlike authentic or inactivated Ebola and Marburg, filovirus-derived virus-like particles directly activated human natural killer (NK) cells in vitro, evidenced by pro-inflammatory cytokine production and enhanced cytolysis of permissive target cells. Further, we observed perforin- and CD95L-mediated cytolysis of filovirus-infected human dendritic cells (DCs), primary targets of filovirus infection, by autologous NK cells. Gene expression knock-down studies directly linked NK cell lysis of infected DCs to upregulation of the natural cytotoxicity receptor, NKp30. These results are the first to propose a role for NK cells in the clearance of infected DCs and the potential involvement of NKp30-mediated cytolysis in control of viral infection in vivo. Further elucidation of the biology of NK cell activation, specifically natural cytotoxicity receptors like NKp30 and NKp46, promises to aid our understanding of microbial pathology.

摘要

了解保护性固有免疫反应是如何产生的对于战胜高致死性新出现病原体至关重要。越来越多的证据表明,有效的固有免疫反应与埃博拉病毒和马尔堡丝状病毒感染的控制紧密相关。在此,我们报告,与真实的或灭活的埃博拉病毒和马尔堡病毒不同,丝状病毒衍生的病毒样颗粒在体外直接激活人自然杀伤(NK)细胞,这通过促炎细胞因子的产生以及对允许性靶细胞的细胞溶解增强得以证明。此外,我们观察到,被丝状病毒感染的人树突状细胞(DCs)是丝状病毒感染的主要靶标,自体NK细胞通过穿孔素和CD95L介导对其进行细胞溶解。基因表达敲低研究直接将感染DCs的NK细胞裂解与自然细胞毒性受体NKp30的上调联系起来。这些结果首次提出NK细胞在清除感染的DCs中的作用以及NKp30介导的细胞溶解在体内控制病毒感染中的潜在参与。进一步阐明NK细胞激活的生物学机制,特别是像NKp30和NKp46这样的自然细胞毒性受体,有望帮助我们理解微生物病理学。

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