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隐球菌与吞噬细胞:影响疾病转归的复杂相互作用

Cryptococcus and Phagocytes: Complex Interactions that Influence Disease Outcome.

作者信息

Leopold Wager Chrissy M, Hole Camaron R, Wozniak Karen L, Wormley Floyd L

机构信息

Department of Biology, The University of Texas at San AntonioSan Antonio, TX, USA; The South Texas Center for Emerging Infectious Diseases, The University of Texas at San AntonioSan Antonio, TX, USA.

出版信息

Front Microbiol. 2016 Feb 9;7:105. doi: 10.3389/fmicb.2016.00105. eCollection 2016.

Abstract

Cryptococcus neoformans and C. gattii are fungal pathogens that cause life-threatening disease. These fungi commonly enter their host via inhalation into the lungs where they encounter resident phagocytes, including macrophages and dendritic cells, whose response has a pronounced impact on the outcome of disease. Cryptococcus has complex interactions with the resident and infiltrating innate immune cells that, ideally, result in destruction of the yeast. These phagocytic cells have pattern recognition receptors that allow recognition of specific cryptococcal cell wall and capsule components. However, Cryptococcus possesses several virulence factors including a polysaccharide capsule, melanin production and secretion of various enzymes that aid in evasion of the immune system or enhance its ability to thrive within the phagocyte. This review focuses on the intricate interactions between the cryptococci and innate phagocytic cells including discussion of manipulation and evasion strategies used by Cryptococcus, anti-cryptococcal responses by the phagocytes and approaches for targeting phagocytes for the development of novel immunotherapeutics.

摘要

新型隐球菌和格特隐球菌是可引发危及生命疾病的真菌病原体。这些真菌通常通过吸入进入肺部,在那里它们会遇到包括巨噬细胞和树突状细胞在内的驻留吞噬细胞,这些吞噬细胞的反应对疾病的转归有显著影响。隐球菌与驻留和浸润的固有免疫细胞存在复杂的相互作用,理想情况下,这种相互作用会导致酵母细胞被破坏。这些吞噬细胞具有模式识别受体,能够识别特定的隐球菌细胞壁和荚膜成分。然而,隐球菌具有多种毒力因子,包括多糖荚膜、黑色素生成以及各种有助于逃避免疫系统或增强其在吞噬细胞内生存能力的酶的分泌。本综述聚焦于隐球菌与固有吞噬细胞之间的复杂相互作用,包括对隐球菌所采用的操纵和逃避策略、吞噬细胞的抗隐球菌反应以及针对吞噬细胞开发新型免疫疗法的方法的讨论。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b14d/4746234/06840742a762/fmicb-07-00105-g001.jpg

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