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N-乙酰葡萄糖胺影响新型隐球菌细胞壁组成和黑色素结构。

N-acetylglucosamine affects Cryptococcus neoformans cell-wall composition and melanin architecture.

机构信息

Department of Molecular Microbiology and Immunology, Johns Hopkins Bloomberg School of Public Health, Johns Hopkins University, Baltimore, MD, USA.

PhD Program in Biochemistry, The Graduate Center of the City University of New York, New York, NY, USA.

出版信息

Microbiology (Reading). 2017 Nov;163(11):1540-1556. doi: 10.1099/mic.0.000552. Epub 2017 Oct 18.

Abstract

Cryptococcus neoformans is an environmental fungus that belongs to the phylum Basidiomycetes and is a major pathogen in immunocompromised patients. The ability of C. neoformans to produce melanin pigments represents its second most important virulence factor, after the presence of a polysaccharide capsule. Both the capsule and melanin are closely associated with the fungal cell wall, a complex structure that is essential for maintaining cell morphology and viability under conditions of stress. The amino sugar N-acetylglucosamine (GlcNAc) is a key constituent of the cell-wall chitin and is used for both N-linked glycosylation and GPI anchor synthesis. Recent studies have suggested additional roles for GlcNAc as an activator and mediator of cellular signalling in fungal and plant cells. Furthermore, chitin and chitosan polysaccharides interact with melanin pigments in the cell wall and have been found to be essential for melanization. Despite the importance of melanin, its molecular structure remains unresolved; however, we previously obtained critical insights using advanced nuclear magnetic resonance (NMR) and imaging techniques. In this study, we investigated the effect of GlcNAc supplementation on cryptococcal cell-wall composition and melanization. C. neoformans was able to metabolize GlcNAc as a sole source of carbon and nitrogen, indicating a capacity to use a component of a highly abundant polymer in the biospherenutritionally. C. neoformans cells grown with GlcNAc manifested changes in the chitosan cell-wall content, cell-wall thickness and capsule size. Supplementing cultures with isotopically N-labelled GlcNAc demonstrated that the exogenous monomer serves as a building block for chitin/chitosan and is incorporated into the cell wall. The altered chitin-to-chitosan ratio had no negative effects on the mother-daughter cell separation; growth with GlcNAc affected the fungal cell-wall scaffold, resulting in increased melanin deposition and assembly. In summary, GlcNAc supplementation had pleiotropic effects on cell-wall and melanin architectures, and thus established its capacity to perturb these structures, a property that could prove useful for metabolic tracking studies.

摘要

新型隐球菌是一种环境真菌,属于担子菌门,是免疫功能低下患者的主要病原体。新型隐球菌产生黑色素色素的能力是其仅次于多糖荚膜的第二大毒力因子。荚膜和黑色素都与真菌细胞壁密切相关,细胞壁是一种复杂的结构,对于在应激条件下维持细胞形态和活力至关重要。氨基糖 N-乙酰葡萄糖胺(GlcNAc)是细胞壁几丁质的关键成分,用于 N-连接糖基化和 GPI 锚定合成。最近的研究表明,GlcNAc 在真菌和植物细胞中作为细胞信号转导的激活剂和介质具有额外的作用。此外,几丁质和壳聚糖多糖与细胞壁中的黑色素相互作用,对于黑色素化是必不可少的。尽管黑色素很重要,但它的分子结构仍然没有解决;然而,我们之前使用先进的核磁共振(NMR)和成像技术获得了关键的见解。在这项研究中,我们研究了 GlcNAc 补充对隐球菌细胞壁组成和黑色素化的影响。新型隐球菌能够将 GlcNAc 作为唯一的碳源和氮源代谢,表明其具有利用生物体内高度丰富聚合物成分的能力。用 GlcNAc 培养的新型隐球菌细胞表现出壳聚糖细胞壁含量、细胞壁厚度和荚膜大小的变化。用同位素 N 标记的 GlcNAc 补充培养物表明,外源性单体是几丁质/壳聚糖的构建块,并被整合到细胞壁中。改变的几丁质/壳聚糖比例对母-子细胞分离没有负面影响;用 GlcNAc 生长会影响真菌细胞壁支架,导致黑色素沉积和组装增加。总之,GlcNAc 补充对细胞壁和黑色素结构有多种影响,因此证明了其能够干扰这些结构的能力,这种特性可能对代谢追踪研究有用。

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