Deshpande Nandan, Wilkins Marc R, Packer Nicolle, Nevalainen Helena
Department of Chemistry and Biomolecular Sciences, Macquarie University, Sydney, New South Wales, 2109, Australia.
Glycobiology. 2008 Aug;18(8):626-37. doi: 10.1093/glycob/cwn044. Epub 2008 May 26.
Glycosylation of proteins is important for protein stability, secretion, and localization. In this study, we have investigated the glycan synthesis pathways of 12 filamentous fungi including those of medical/agricultural/industrial importance for which genomes have been recently sequenced. We have adopted a systems biology approach to combine the results from comparative genomics techniques with high confidence information on the enzymes and fungal glycan structures, reported in the literature. From this, we have developed a composite representation of the glycan synthesis pathways in filamentous fungi (both N- and O-linked). The N-glycosylation pathway in the cytoplasm and endoplasmic reticulum was found to be highly conserved evolutionarily across all the filamentous fungi considered in the study. In the final stages of N-glycan synthesis in the Golgi, filamentous fungi follow the high mannose pathway as in Saccharomyces cerevisiae, but the level of glycan mannosylation is reduced. Highly specialized N-glycan structures with galactofuranose residues, phosphodiesters, and other insufficiently trimmed structures have also been identified in the filamentous fungi. O-Linked glycosylation in filamentous fungi was seen to be highly conserved with many mannosyltransferases that are similar to those in S. cerevisiae. However, highly variable and diverse O-linked glycans also exist. We have developed a web resource for presenting the compiled data with user-friendly query options, which can be accessed at www.fungalglycans.org. This resource can assist attempts to remodel glycosylation of recombinant proteins expressed in filamentous fungal hosts.
蛋白质糖基化对于蛋白质的稳定性、分泌和定位非常重要。在本研究中,我们调查了12种丝状真菌的聚糖合成途径,包括那些具有医学/农业/工业重要性且最近已完成基因组测序的真菌。我们采用了系统生物学方法,将比较基因组学技术的结果与文献中报道的关于酶和真菌聚糖结构的高可信度信息相结合。据此,我们构建了丝状真菌(包括N-连接和O-连接)聚糖合成途径的综合表示。研究发现,细胞质和内质网中的N-糖基化途径在所有被研究的丝状真菌中进化上高度保守。在高尔基体中N-聚糖合成的最后阶段,丝状真菌如同酿酒酵母一样遵循高甘露糖途径,但聚糖的甘露糖基化水平有所降低。在丝状真菌中还鉴定出了具有半乳呋喃糖残基、磷酸二酯和其他修剪不完全结构的高度特化的N-聚糖结构。丝状真菌中的O-连接糖基化被认为高度保守,有许多与酿酒酵母中的甘露糖基转移酶相似的酶。然而,也存在高度可变和多样的O-连接聚糖。我们开发了一个网络资源,以用户友好的查询选项展示汇编数据,可在www.fungalglycans.org上访问。该资源有助于尝试重塑在丝状真菌宿主中表达的重组蛋白的糖基化。