分子内立体选择性o糖基化方法研究进展

IF 2.4 3区 化学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Anindra Sharma , Manoj K. Jaiswal , Mangal S. Yadav , Danish Ansari , Rama P. Tripathi , Vinod K. Tiwari
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引用次数: 0

摘要

由于碳水化合物具有结构多样性、生物相容性、亲水性、低毒性、生物利用度和优异的ADME特性,其作为生物、制药和生物技术支架的多功能性日益得到认可。随着碳水化合物在生物系统中的重要作用不断加深,生物医学研究对碳水化合物的需求不断增加。化学合成仍然是满足这一需求的最可行的方法,尽管糖基化反应存在固有的挑战。特别是碳水化合物低聚物,由于需要复杂的保护和离去基修饰、功能化、劳动密集型的纯化和详细的表征,造成了很大的困难。在糖基化过程中精确的立体和区域控制仍然是有机合成的主要挑战之一。为了提高糖基化产物的选择性,“分子内糖基化”的概念被提出,为传统方法提供了一种更先进、更有效的替代途径。各种分子内糖基化方法主要可分为三类:分子内糖基传递(IAD)、基于离去基的分子内糖基化和分子钳概念。本文综述了这三种方法的基本原理及其重大进展,并重点介绍了它们在立体选择性合成许多生物活性o -糖苷、具有不同功能的聚糖、复杂低聚糖和具有明确立体选择性的各种大环方面日益增长的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Recent development on stereoselective intramolecular O-glycosylation methodology

Recent development on stereoselective intramolecular O-glycosylation methodology
Carbohydrates are increasingly recognized for their versatility as scaffolds in biological, pharmaceutical and biotechnological applications, due to their structural diversity, biocompatibility, hydrophilicity, low toxicity, bioavailability, and excellent ADME properties. The important role of carbohydrates in biological systems deepens, the demand for well-defined and anomerically pure carbohydrates in biomedical research has surged. Chemical synthesis remains the most viable method to meet this demand, despite the inherent challenges in glycosylation reactions. Carbohydrate oligomers, in particular, pose significant difficulties due to the need for complex protecting and leaving group modifications, functionalization, labour-intensive purification, and detailed characterization. A precise stereo and regio-control during glycosylation remains one of the major challenges in organic synthesis. To enhance the selectivity in glycosylation products, the concept of 'Intramolecular Glycosylation' was developed, offering a more advanced and efficient alternative route to conventional methods. Various intramolecular glycosylation methods can be classified primarily into three categories: Intramolecular Aglycone Delivery (IAD), Leaving Group-based Intramolecular Glycosylation, and the Molecular Clamp concept. This review article explores the fundamentals of these three methodologies, their significant advancements, and highlights their growing impact on the stereoselective synthesis of numerous bioactive O-glycosides, glycans with diverse functionalities, complex oligosaccharides, and various macrocycles with definite stereoselectivity.
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来源期刊
Carbohydrate Research
Carbohydrate Research 化学-生化与分子生物学
CiteScore
5.00
自引率
3.20%
发文量
183
审稿时长
3.6 weeks
期刊介绍: Carbohydrate Research publishes reports of original research in the following areas of carbohydrate science: action of enzymes, analytical chemistry, biochemistry (biosynthesis, degradation, structural and functional biochemistry, conformation, molecular recognition, enzyme mechanisms, carbohydrate-processing enzymes, including glycosidases and glycosyltransferases), chemical synthesis, isolation of natural products, physicochemical studies, reactions and their mechanisms, the study of structures and stereochemistry, and technological aspects. Papers on polysaccharides should have a "molecular" component; that is a paper on new or modified polysaccharides should include structural information and characterization in addition to the usual studies of rheological properties and the like. A paper on a new, naturally occurring polysaccharide should include structural information, defining monosaccharide components and linkage sequence. Papers devoted wholly or partly to X-ray crystallographic studies, or to computational aspects (molecular mechanics or molecular orbital calculations, simulations via molecular dynamics), will be considered if they meet certain criteria. For computational papers the requirements are that the methods used be specified in sufficient detail to permit replication of the results, and that the conclusions be shown to have relevance to experimental observations - the authors'' own data or data from the literature. Specific directions for the presentation of X-ray data are given below under Results and "discussion".
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