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Asking more from metabolic oligosaccharide engineering

机译:从代谢寡糖工程中索取更多信息

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摘要

Glycans form one of the four classes of biomolecules, are found in every living system and present a huge structural and functional diversity. As an illustration of this diversity, it has been reported that more than 50% of the human proteome is glycosylated and that 2% of the human genome is dedicated to glycosylation processes. Glycans are involved in many biological processes such as signalization, cell–cell or host pathogen interactions, immunity, etc. However, fundamental processes associated with glycans are not yet fully understood and the development of glycobiology is relatively recent compared to the study of genes or proteins. Approximately 25 years ago, the studies of Bertozzi's and Reutter's groups paved the way for metabolic oligosaccharide engineering (MOE), a strategy which consists in the use of modified sugar analogs which are taken up into the cells, metabolized, incorporated into glycoconjugates, and finally detected in a specific manner. This groundbreaking strategy has been widely used during the last few decades and the concomitant development of new bioorthogonal ligation reactions has allowed many advances in the field. Typically, MOE has been used to either visualize glycans or identify different classes of glycoproteins. The present review aims to highlight recent studies that lie somewhat outside of these more traditional approaches and that are pushing the boundaries of MOE applications.
机译:聚糖是生物分子的四类之一,存在于每个生命系统中,并具有巨大的结构和功能多样性。作为这种多样性的例证,据报道,超过50%的人类蛋白质组被糖基化,而人类基因组的2%专门用于糖基化过程。聚糖参与许多生物学过程,例如信号转导,细胞间或宿主病原体的相互作用,免疫等。但是,与聚糖相关的基本过程尚未完全了解,与基因或基因研究相比,糖生物学的发展相对较新。蛋白质。大约25年前,Bertozzi和Reutter的研究小组为代谢寡糖工程(MOE)铺平了道路,该战略包括使用修饰的糖类似物,这些糖类似物被吸收到细胞中,被代谢,并入糖结合物中,最后以特定方式检测到。在过去的几十年中,这种开创性的策略得到了广泛的应用,伴随着新的生物正交连接反应的发展,该领域也取得了许多进展。通常,MOE已用于可视化聚糖或鉴定不同类别的糖蛋白。本综述旨在重点介绍一些超出这些传统方法的最新研究,这些研究正在推动MOE应用的边界。

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