Department of Molecular Microbiology, Washington University School of Medicine, 660 South Euclid Avenue, Saint Louis, MO, USA.
Glycobiology. 2018 Oct 1;28(10):719-730. doi: 10.1093/glycob/cwy030.
Fungal pathogens cause devastating infections in millions of individuals each year, representing a huge but underappreciated burden on human health. One of these, the opportunistic fungus Cryptococcus neoformans, kills hundreds of thousands of patients annually, disproportionately affecting people in resource-limited areas. This yeast is distinguished from other pathogenic fungi by a polysaccharide capsule that is displayed on the cell surface. The capsule consists of two complex polysaccharide polymers: a mannan substituted with xylose and glucuronic acid, and a galactan with galactomannan side chains that bear variable amounts of glucuronic acid and xylose. The cell wall, with which the capsule is associated, is a matrix of alpha and beta glucans, chitin, chitosan, and mannoproteins. In this review, we focus on synthesis of the wall and capsule, both of which are critical for the ability of this microbe to cause disease and are distinct from structures found in either model yeasts or the mammals afflicted by this infection. Significant research effort over the last few decades has been applied to defining the synthetic machinery of these two structures, including nucleotide sugar metabolism and transport, glycosyltransferase activities, polysaccharide export, and assembly and association of structural elements. Discoveries in this area have elucidated fundamental biology and may lead to novel targets for antifungal therapy. In this review, we summarize the progress made in this challenging and fascinating area, and outline future research questions.
真菌病原体每年导致数百万人遭受严重感染,对人类健康造成巨大但未被充分认识的负担。其中一种机会性真菌新型隐球菌每年导致数十万人死亡, disproportionately 影响资源有限地区的人群。与其他致病真菌不同,这种酵母在细胞表面展示多糖荚膜。荚膜由两种复杂的多糖聚合物组成:一种用木糖和葡萄糖醛酸取代的甘露聚糖,以及一种带有半乳甘露聚糖侧链的半乳糖聚糖,侧链带有可变数量的葡萄糖醛酸和木糖。与荚膜相关的细胞壁是α和β葡聚糖、几丁质、壳聚糖和甘露糖蛋白的基质。在这篇综述中,我们重点介绍了细胞壁和荚膜的合成,这两者对于这种微生物引起疾病的能力都是至关重要的,并且与模型酵母或受这种感染影响的哺乳动物中的结构不同。在过去几十年中,人们投入了大量的研究努力来定义这两种结构的合成机制,包括核苷酸糖代谢和运输、糖基转移酶活性、多糖输出以及结构元件的组装和关联。这一领域的发现阐明了基础生物学,并可能为抗真菌治疗提供新的靶点。在这篇综述中,我们总结了在这个具有挑战性和迷人的领域中取得的进展,并概述了未来的研究问题。