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离子液体中的乙酰化作用显著提高了不溶性和酸性多糖的糖苷组成和连接分析的产率。

Acetylation in Ionic Liquids Dramatically Increases Yield in the Glycosyl Composition and Linkage Analysis of Insoluble and Acidic Polysaccharides.

机构信息

Complex Carbohydrate Research Center, University of Georgia, 315 Riverbend Road, Athens, Georgia 30602, United States.

出版信息

Anal Chem. 2023 Aug 29;95(34):12851-12858. doi: 10.1021/acs.analchem.3c02056. Epub 2023 Aug 18.

Abstract

Glycosyl composition and linkage analyses are important first steps toward understanding the structural diversity and biological importance of polysaccharides. Failure to fully solubilize samples prior to analysis results in the generation of incomplete and poor-quality composition and linkage data by gas chromatography-mass spectrometry (GC-MS). Acidic polysaccharides also do not give accurate linkage results, because they are poorly soluble in DMSO and tend to undergo β-elimination during permethylation. Ionic liquids can solubilize polysaccharides, improving their derivatization and extraction for analysis. We show that water-insoluble polysaccharides become much more amenable to chemical analysis by first acetylating them in an ionic liquid. Once acetylated, these polysaccharides, having been deprived of their intermolecular hydrogen bonds, are hydrolyzed more readily for glycosyl composition analysis or methylated more efficiently for glycosyl linkage analysis. Acetylation in an ionic liquid greatly improves composition analysis of insoluble polysaccharides when compared to analysis without acetylation, enabling complete composition determination of normally recalcitrant polysaccharides. We also present a protocol for uronic acid linkage analysis that incorporates this preacetylation step. This protocol produces partially methylated alditol acetate derivatives in high yield with minimal β-elimination and gives sensitive linkage results for acidic polysaccharides that more accurately reflect the structures being analyzed. We use important plant polysaccharides to show that the preacetylation step leads to superior results compared to traditional methodologies.

摘要

糖基组成和连接分析是理解多糖结构多样性和生物学重要性的重要第一步。如果在分析前未能充分溶解样品,会导致气相色谱-质谱(GC-MS)产生不完整和质量差的组成和连接数据。酸性多糖也无法给出准确的连接结果,因为它们在 DMSO 中溶解度差,并且在全甲基化过程中容易发生β消除。离子液体可以溶解多糖,从而改善其衍生化和提取以进行分析。我们表明,通过首先在离子液体中对水不溶性多糖进行乙酰化,可以使其更适合化学分析。一旦乙酰化,这些多糖由于失去了分子间氢键,因此更易于进行糖基组成分析的水解,或更有效地进行糖基连接分析的甲基化。与未经乙酰化的分析相比,离子液体中的乙酰化大大改善了不溶性多糖的组成分析,从而能够完全确定通常难以处理的多糖的组成。我们还提出了一种包含该预乙酰化步骤的糖醛酸连接分析方案。该方案以高产率生成部分甲基化的醛糖醇乙酸酯衍生物,最小化β消除,并为酸性多糖提供灵敏的连接结果,更准确地反映正在分析的结构。我们使用重要的植物多糖表明,与传统方法相比,预乙酰化步骤可带来更好的结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d295/10469378/4ee6834a3fbf/ac3c02056_0001.jpg

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