河北师范大学分子细胞生物学教育部重点实验室,河北省分子细胞生物学重点实验室,河北师范大学生命科学学院,石家庄 050024
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河北省自然科学基金(C2020205049) 资助项目。
Ministry of Education Key Laboratory of Molecular and Cellular Biology, Hebei Key Laboratory of Molecular and Cellular Biology, College of Life Sciences, Hebei Normal University, Shijiazhuang 050024, China
This work was supported by a grant from Hebei Natural Science Foundation (C2020205049).
糖基化是生物体中最重要的反应之一,通过糖基化作用可以形成具有多种生物功能的糖缀合物。糖核苷酸作为Leloir型糖基转移酶催化的转糖基反应的糖基供体,在聚糖和糖缀合物的生物合成中必不可少。然而,糖核苷酸的成本较高、可用性有限等因素阻碍了生物催化级联反应在工业中大规模的应用。因此,人们越来越关注糖核苷酸的合成策略,以实现其在多种领域的广泛应用。目前,糖核苷酸及其衍生物的化学合成方法已经建立起来,但合成反应的产量通常很低,而酶法(化学-酶法)和细胞工厂法在合成糖核苷酸过程中具有显著优势。本文主要围绕哺乳动物中常见的9种糖核苷酸,概述了其类型和结构、酶法(化学-酶法)和细胞工厂法两种制备方法。伴随糖核苷酸的高效合成,其多种功能逐渐被发现和应用。本文进一步概述了糖核苷酸在聚糖及糖缀合物合成、糖基转移酶生化性质表征以及生物正交标记策略等方面的应用,对生物化学、糖生物学的研究以及相关医药产品的研发具有十分重要的意义。
Glycosylation is one of the most important reactions in living organisms as it results in the formation of glycoconjugates with diverse biological functions. Sugar nucleotides are structurally composed of sugar and nucleoside diphosphate or monophosphate, which are widespread within a variety of biological cells. As glycosyl donors for the transglycosyl reactions catalyzed by Leloir-type glycosyltransferases, sugar nucleotides are essential for the synthesis of glycans and glycoconjugates. However, high costs and limited availability of nucleotide sugars prevent applications of biocatalytic cascades on an industrial scale. Therefore, attentions on synthetic strategies of sugar nucleotides have been increasing to achieve their wide applications in various fields. The 9 common sugar nucleotides in mammals have been fully studied with large-scale synthesis through chemical, enzymatic (chemo-enzymatic) and cell factory strategies. In addition to common sugar nucleotides, many rare sugar nucleotides are present in plants and bacteria. Although unnatural sugar nucleotides cannot be synthesized in organisms, they have great potential in research as substrates for glycosyltransferases in carbohydrate synthesis, as enzyme inhibitors in biochemical studies, and as components of glycoconjugate biosynthesis. Therefore, increasing attention has been paid to explore the efficient synthesis of unnatural sugar nucleotides. Currently, strategies for chemical synthesis of sugar nucleotides have been greatly improved, such as the use of effective catalysts for forming pyrophosphate bonds and the development of entirely new synthesis protocols. Multiple sugar nucleotides, especially unnatural sugar nucleotides, are synthesized chemically. However, chemical synthesis requires tedious protection and deprotection steps, resulting in complex steps, high cost and low yield. In contrast, enzymatic (chemo-enzymatic) and cell factory methods have significant advantages such as high yield, easy operation and easy process scale-up in the preparation of sugar nucleotides. Hence, they are prominent strategies for sugar nucleotide preparation. Herein, the biosynthesis and application of sugar nucleotides are reviewed, mainly focusing on the 9 sugar nucleotides common in mammals. The early strategies for enzymatic synthesis of sugar nucleotides generally used de novo synthesis pathway. With the discoveries of enzymes involved in salvage pathway of sugar nucleotide synthesis and the development of one-pot multienzyme (OPME) method, the synthesis of sugar nucleotides was greatly simplified. Cell factory method employs the microbial living cells as a “processing plant” by engineering their metabolic pathways through genetic engineering technology. The cell factory method has high yield, and has been applied for efficient synthesis of several sugar nucleotides. Moreover, the strategy of gram-scale synthesis of multiple rare sugar nucleotides by cascade reactions from common sugar nucleotides using sugar nucleotides synthases cloned from different sources was illustrated. In recent years, the synthesis cost of sugar nucleotides has been further reduced through various ways, such as regeneration of nucleotides, regeneration of organic cofactors, and application of immobilized enzyme technology. Furthermore, through the continuous improvement of sugar nucleotide purification process, the use of high concentration of multi-enzyme cascade and rapid non-chromatographic purification process, the synthesis of multiple sugar nucleotides and their derivatives from monosaccharides was achieved, which gradually broke the limitations of the existing strategy. With the efficient synthesis of sugar nucleotides, their applications in various fields have been increasingly explored, including the synthesis of glycans and glycoconjugates, biochemical characterization of glycosyltransferases and bioorthogonal labeling strategies, which are of great significance to the research of biochemistry, glycobiology and the development of related pharmaceutical products.
郝萌,连佳琪,张翠璐,关婉怡.糖核苷酸的生物合成和应用[J].生物化学与生物物理进展,2024,51(4):822-838
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