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Molecular dynamics simulations of glycoclusters and glycodendrimers

机译:糖簇和糖树状聚合物的分子动力学模拟

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Protein-carbohydrate recognition plays a crucial role in a wide range of biological processes, required both for normal physiological functions and the onset of disease. Nature uses multivalency in carbohydrate-protein interactions as a strategy to overcome the low affinity found for singular binding of an individual saccharide epitope to a single carbohydrate recognition domain of a lectin. To mimic the complex multi-branched oligosaccharides found in glycoconjugates, which form the structural basis of multivalent carbohydrate-protein interactions, so-called glycoclusters and glycodendrimers have been designed to serve as high-affinity ligands of the respective receptor proteins. To allow a rational design of glycodendrimer-type molecules with regard to the receptor structures involved in carbohydrate recognition, a deeper knowledge of the dynamics of such molecules is desirable. Most glycodendrimers have to be considered highly flexible molecules with their conformational preferences most difficult to elucidate by experimental methods. Longtime molecular dynamics (MD) simulations with inclusion of explicit solvent molecules are suited to explore the conformational space accessible to glycodendrimers. Here, a detailed geometric and conformational analysis of 15 glycodendrimers and glycoclusters has been accomplished, which differ with regard to their core moieties, spacer characteristics and the type of terminal carbohydrate units. It is shown that the accessible conformational space depends strongly on the structural features of the core and spacer moieties and even on the type of terminating sugars. The obtained knowledge about possible spatial distributions of the sugar epitopes exposed on the investigated hyperbranched neoglycoconjugates is detailed for all examples and forms important information for the interpretation and prediction of affinity data, which can be deduced from biological testing of these multivalent neoglycoconjugates.
机译:蛋白质碳水化合物的识别在正常的生理功能和疾病发作所需的广泛的生物过程中起着至关重要的作用。大自然在碳水化合物-蛋白质相互作用中使用多价作为一种策略,以克服单个糖表位与凝集素的单个碳水化合物识别域单数结合的低亲和力。为了模拟在糖缀合物中发现的复杂的多分支寡糖,其形成了多价碳水化合物-蛋白质相互作用的结构基础,已设计了所谓的糖簇和糖类树状大分子作为各自受体蛋白的高亲和力配体。为了允许就糖类识别中涉及的受体结构合理设计糖类树状聚合物型分子,需要对此类分子的动力学有更深入的了解。大多数糖树状聚合物必须被认为是高度柔性的分子,其构象偏好最难通过实验方法阐明。包含明确溶剂分子的长期分子动力学(MD)模拟适合探索糖类树状聚合物可及的构象空间。在这里,已完成了对15个糖类树状聚合物和糖簇的详细几何和构象分析,它们的核心部分,间隔子特征和末端碳水化合物单元的类型不同。结果表明,可到达的构象空间在很大程度上取决于核心和间隔部分的结构特征,甚至取决于终止糖的类型。对于所有实施例,都详细描述了暴露在所研究的超支化新糖缀合物上的糖表位可能的空间分布的知识,并为解释和预测亲和力数据提供了重要的信息,这可以从这些多价新糖缀合物的生物学测试中得出。

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