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α-和β-1,3-葡聚糖的合成与重塑。

α- and β-1,3-Glucan Synthesis and Remodeling.

机构信息

Institut Für Hygiene Und Mikrobiologie, University of Würzburg, Würzburg, Germany.

National Reference Center for Invasive Fungal Infections (NRZMyk), Jena, Germany.

出版信息

Curr Top Microbiol Immunol. 2020;425:53-82. doi: 10.1007/82_2020_200.

DOI:10.1007/82_2020_200
PMID:32193600
Abstract

Glucans are characteristic and major constituents of fungal cell walls. Depending on the species, different glucan polysaccharides can be found. These differ in the linkage of the D-glucose monomers which can be either in α- or β-conformation and form 1,3, 1,4 or 1,6 O-glycosidic bonds. The linkages and polymer lengths define the physical properties of the glucan macromolecules, which may form a scaffold for other cell wall structures and influence the rigidity and elasticity of the wall. β-1,3-glucan is essential for the viability of many fungal pathogens. Therefore, the β-1,3-glucan synthase complex represents an excellent and primary target structure for antifungal drugs. Fungal cell wall β-glucan is also an important pathogen-associated molecular pattern (PAMP). To hide from innate immunity, many fungal pathogens depend on the synthesis of cell wall α-glucan, which functions as a stealth molecule to mask the β-glucans itself or links other masking structures to the cell wall. Here, we review the current knowledge about the biosynthetic machineries that synthesize β-1,3-glucan, β-1,6-glucan, and α-1,3-glucan. We summarize the discovery of the synthases, major regulatory traits, and the impact of glucan synthesis deficiencies on the fungal organisms. Despite all efforts, many aspects of glucan synthesis remain yet unresolved, keeping research directed toward cell wall biogenesis an exciting and continuously challenging topic.

摘要

葡聚糖是真菌细胞壁的特征和主要成分。根据物种的不同,可以发现不同的葡聚糖多糖。这些葡聚糖多糖在 D-葡萄糖单体的连接方式上有所不同,可能是α-或β-构象,并形成 1,3,1,4 或 1,6 O-糖苷键。连接方式和聚合物长度决定了葡聚糖大分子的物理性质,这些性质可能为其他细胞壁结构形成支架,并影响细胞壁的刚性和弹性。β-1,3-葡聚糖是许多真菌病原体存活所必需的。因此,β-1,3-葡聚糖合酶复合物是抗真菌药物的一个极好的和主要的靶标结构。真菌细胞壁β-葡聚糖也是一种重要的病原体相关分子模式(PAMP)。为了躲避先天免疫,许多真菌病原体依赖于细胞壁α-葡聚糖的合成,该聚糖作为一种隐身分子,掩盖β-葡聚糖本身或与细胞壁连接其他掩蔽结构。在这里,我们综述了关于合成β-1,3-葡聚糖、β-1,6-葡聚糖和α-1,3-葡聚糖的生物合成机制的现有知识。我们总结了合酶的发现、主要调控特征,以及葡聚糖合成缺陷对真菌生物的影响。尽管已经付出了很多努力,但葡聚糖合成的许多方面仍然没有得到解决,这使得细胞壁生物发生的研究仍然是一个令人兴奋且不断具有挑战性的课题。

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