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多价凝集素-碳水化合物相互作用:结合的能量学和机制。

Multivalent lectin-carbohydrate interactions: Energetics and mechanisms of binding.

机构信息

Formerly of the Department of Molecular Pharmacology, Albert Einstein College of Medicine, Bronx, NY, United States.

Department of Molecular Pharmacology, Microbiology and Immunology, Albert Einstein College of Medicine, Bronx, NY, United States.

出版信息

Adv Carbohydr Chem Biochem. 2023;84:23-48. doi: 10.1016/bs.accb.2023.10.005. Epub 2023 Nov 7.

Abstract

The biological signaling properties of lectins, which are carbohydrate-binding proteins, are due to their ability to bind and cross-link multivalent glycoprotein receptors on the surface of normal and transformed cells. While the cross-linking properties of lectins with multivalent carbohydrates and glycoproteins are relatively well understood, the mechanisms of binding of lectins to multivalent glycoconjugates are less well understood. Recently, the thermodynamics of binding of lectins to synthetic clustered glycosides, a multivalent globular glycoprotein, and to linear glycoproteins (mucins) have been described. The results are consistent with a dynamic binding mechanism in which lectins bind and jump from carbohydrate to carbohydrate epitope in these molecules. Importantly, the mechanism of binding of lectins to mucins is similar to that for a variety of protein ligands binding to DNA. Recent analysis also shows that high-affinity lectin-mucin cross-linking interactions are driven by favorable entropy of binding that is associated with the bind and jump mechanism. The results suggest that the binding of ligands to biopolymers, in general, may involve a common mechanism that involves enhanced entropic effects which facilitate binding and subsequent complex formation including enzymology.

摘要

凝集素是一种能够结合和交联正常细胞和转化细胞表面的多价糖蛋白受体的糖结合蛋白,具有生物信号转导特性。虽然凝集素与多价碳水化合物和糖蛋白的交联特性已经得到了相对较好的理解,但凝集素与多价糖缀合物结合的机制还不太清楚。最近,已经描述了凝集素与合成聚集糖、多价球状糖蛋白和线性糖蛋白(粘蛋白)结合的热力学。结果与动态结合机制一致,其中凝集素在这些分子中结合并从碳水化合物跳跃到碳水化合物表位。重要的是,凝集素与粘蛋白的结合机制类似于各种蛋白质配体与 DNA 的结合。最近的分析还表明,高亲和力的凝集素-粘蛋白交联相互作用是由与结合和跳跃机制相关的有利结合熵驱动的。结果表明,一般来说,配体与生物聚合物的结合可能涉及一种共同的机制,涉及增强的熵效应,这有利于结合和随后的复杂形成,包括酶学。

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