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碳水化合物 - 蛋白质相互作用的核磁共振分析

NMR analysis of carbohydrate-protein interactions.

作者信息

Angulo Jesus, Rademacher Christoph, Biet Thorsten, Benie Andrew J, Blume Astrid, Peters Hannelore, Palcic Monica, Parra Francisco, Peters Thomas

机构信息

Instituto de Investigacionies Químicas (CSIC-US), Sevilla, Spain.

出版信息

Methods Enzymol. 2006;416:12-30. doi: 10.1016/S0076-6879(06)16002-4.

Abstract

Carbohydrate-protein interactions are frequently characterized by dissociation constants in the microM to mM range. This is normally associated with fast dissociation rates of the corresponding complexes, in turn leading to fast exchange on the nuclear magnetic resonance (NMR) chemical shift time scale and on the NMR relaxation time scale. Therefore, NMR experiments that take advantage of fast exchange are well suited to study carbohydrate-protein interactions. In general, it is possible to analyze ligand binding by observing either protein signals or ligand resonances. Because most receptor proteins to which carbohydrates bind are rather large with molecular weights significantly exceeding 30 kDa, the analysis of the corresponding protein spectra is not trivial, and only very few studies have been addressing this issue so far. We, therefore, focus on NMR experiments that employ observation of free ligand, that is, carbohydrate signals to analyze the bound state. Two types of NMR experiments have been extremely valuable to analyze carbohydrate-protein interactions at atomic resolution. Whereas transferred nuclear Overhauser effect (NOE) experiments deliver bioactive conformations of carbohydrates binding to proteins, saturation transfer difference (STD) NMR spectra provide binding epitopes and valuable information about the binding thermodynamics and kinetics. We demonstrate the power of a combined transfer NOE/STD NMR approach for the analysis of carbohydrate-protein complexes using selected examples.

摘要

碳水化合物与蛋白质的相互作用通常以微摩尔至毫摩尔范围内的解离常数为特征。这通常与相应复合物的快速解离速率相关,进而导致在核磁共振(NMR)化学位移时间尺度和NMR弛豫时间尺度上的快速交换。因此,利用快速交换的NMR实验非常适合研究碳水化合物与蛋白质的相互作用。一般来说,通过观察蛋白质信号或配体共振来分析配体结合是可行的。由于大多数与碳水化合物结合的受体蛋白相当大,分子量显著超过30 kDa,因此分析相应的蛋白质光谱并非易事,到目前为止只有极少数研究涉及这个问题。因此,我们专注于利用观察游离配体(即碳水化合物信号)来分析结合状态的NMR实验。有两种类型的NMR实验对于在原子分辨率下分析碳水化合物与蛋白质的相互作用极为有价值。转移核Overhauser效应(NOE)实验可提供与蛋白质结合的碳水化合物的生物活性构象,而饱和转移差异(STD)NMR光谱则提供结合表位以及有关结合热力学和动力学的有价值信息。我们通过选定的示例展示了组合转移NOE/STD NMR方法在分析碳水化合物 - 蛋白质复合物方面的强大功能。

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