Department of Chemistry, Indian Institute of Technology Kharagpur , Kharagpur-721302, India.
J Phys Chem B. 2014 Jan 9;118(1):26-36. doi: 10.1021/jp407057f. Epub 2013 Dec 24.
Protein-ligand electrostatic interaction can be looked upon as ion receptor-ligand interaction, and the binding cavity of protein can be either an anion or cation receptor depending on the charge of the guest. Here we focus on the exploration of pH-modulated binding of a number of anionic ligands, specific to the subdomain IIA cavity of HSA, such as carmoisine, tartrazine, cochineal red, and warfarin. The logarithm of the binding constant is found to vary linearly with the square-root of ionic strength, indicating applicability of the Debye-Hückel limiting law to protein-ligand electrostatic binding equilibrium, and concludes that the subdomain IIA cavity is an anion receptor. The present approach is very unique that one can calculate the effective charge of the protein-based anion receptor pocket, and the calculated charge has been found to vary between +1 and +3 depending on the pH and ligand itself. The study also indicates that in such cases of specific ligand binding the pocket charge rather than the overall or surface charge of the macromolecule seems to have a paramount role in determining the strength of interaction. For the first time, it is demonstrated that the Debye-Hückel interionic interaction model can be successfully applied to understand the protein-based receptor-ligand electrostatic interaction in general.
蛋白质-配体静电相互作用可以看作是离子受体-配体相互作用,而蛋白质的结合腔可以是阴离子受体或阳离子受体,这取决于客体的电荷。在这里,我们专注于探索一系列阴离子配体与 HSA 亚域 IIA 腔的 pH 调节结合,例如胭脂红、柠檬黄、胭脂红和华法林。发现结合常数的对数与离子强度的平方根呈线性关系,表明 Debye-Hückel 极限定律适用于蛋白质-配体静电结合平衡,并且得出结论,亚域 IIA 腔是阴离子受体。目前的方法非常独特,可以计算基于蛋白质的阴离子受体口袋的有效电荷,并且已经发现计算出的电荷根据 pH 值和配体本身在 +1 到 +3 之间变化。该研究还表明,在这种特定配体结合的情况下,口袋电荷而不是大分子的整体或表面电荷似乎在决定相互作用强度方面起着至关重要的作用。这是首次证明 Debye-Hückel 离子间相互作用模型可以成功应用于一般的蛋白质基受体-配体静电相互作用。