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T细胞限制性Notch信号传导在感染期间有助于肺部Th1和Th2免疫。

T Cell-Restricted Notch Signaling Contributes to Pulmonary Th1 and Th2 Immunity during Infection.

作者信息

Neal Lori M, Qiu Yafeng, Chung Jooho, Xing Enze, Cho Woosung, Malachowski Antoni N, Sandy-Sloat Ashley R, Osterholzer John J, Maillard Ivan, Olszewski Michal A

机构信息

Department of Internal Medicine, Pulmonary and Critical Care Medicine, University of Michigan, Ann Arbor, MI 48109.

Research Service, VA Ann Arbor Healthcare System, Ann Arbor, MI 48105.

出版信息

J Immunol. 2017 Jul 15;199(2):643-655. doi: 10.4049/jimmunol.1601715. Epub 2017 Jun 14.

DOI:10.4049/jimmunol.1601715
PMID:28615417
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5513675/
Abstract

is a ubiquitous, opportunistic fungal pathogen but the cell signaling pathways that drive T cell responses regulating antifungal immunity are incompletely understood. Notch is a key signaling pathway regulating T cell development, and differentiation and functional responses of mature T cells in the periphery. The targeting of Notch signaling within T cells has been proposed as a potential treatment for alloimmune and autoimmune disorders, but it is unknown whether disturbances to T cell immunity may render these patients vulnerable to fungal infections. To elucidate the role of Notch signaling during fungal infections, we infected mice expressing the pan-Notch inhibitor dominant negative mastermind-like within mature T cells with Inhibition of T cell-restricted Notch signaling increased fungal burdens in the lungs and CNS, diminished pulmonary leukocyte recruitment, and simultaneously impaired Th1 and Th2 responses. Pulmonary leukocyte cultures from T cell Notch-deprived mice produced less IFN-γ, IL-5, and IL-13 than wild-type cells. This correlated with lower frequencies of IFN-γ-, IL-5-, and IL-13-producing CD4 T cells, reduced expression of Th1 and Th2 associated transcription factors, Tbet and GATA3, and reduced production of IFN-γ by CD8 T cells. In contrast, Th17 responses were largely unaffected by Notch signaling. The changes in T cell responses corresponded with impaired macrophage activation and reduced leukocyte accumulation, leading to diminished fungal control. These results identify Notch signaling as a previously unappreciated regulator of Th1 and Th2 immunity and an important element of antifungal defenses against cryptococcal infection and CNS dissemination.

摘要

新型隐球菌是一种普遍存在的机会性真菌病原体,但驱动T细胞反应以调节抗真菌免疫的细胞信号通路尚未完全明确。Notch是调节T细胞发育以及外周成熟T细胞分化和功能反应的关键信号通路。T细胞内Notch信号通路的靶向作用已被提议作为同种免疫和自身免疫性疾病的一种潜在治疗方法,但尚不清楚T细胞免疫功能紊乱是否会使这些患者易患真菌感染。为了阐明Notch信号通路在真菌感染中的作用,我们用新型隐球菌感染了在成熟T细胞中表达泛Notch抑制剂显性负性主调控因子样蛋白的小鼠。抑制T细胞限制性Notch信号通路会增加肺部和中枢神经系统中的真菌负荷,减少肺部白细胞募集,同时损害Th1和Th2反应。来自T细胞Notch缺失小鼠的肺部白细胞培养物产生的IFN-γ、IL-5和IL-13比野生型细胞少。这与产生IFN-γ、IL-5和IL-13的CD4 T细胞频率降低、Th1和Th2相关转录因子Tbet和GATA3的表达减少以及CD8 T细胞产生的IFN-γ减少相关。相比之下,Th17反应在很大程度上不受Notch信号通路的影响。T细胞反应的变化与巨噬细胞活化受损和白细胞积累减少相对应,导致真菌控制减弱。这些结果表明Notch信号通路是Th1和Th2免疫先前未被认识的调节因子,也是抗新型隐球菌感染和中枢神经系统播散的抗真菌防御的重要组成部分。

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Role of dendritic cell-pathogen interactions in the immune response to pulmonary cryptococcal infection.树突状细胞与病原体相互作用在肺部隐球菌感染免疫反应中的作用。
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