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关于类固醇与抗雌二醇抗体结合的亲和力和特异性的自由能模拟及MM-PBSA分析。

Free energy simulations and MM-PBSA analyses on the affinity and specificity of steroid binding to antiestradiol antibody.

作者信息

Laitinen Tuomo, Kankare Jussi A, Peräkylä Mikael

机构信息

Department of Chemistry, University of Kuopio, Kuopio, Finland.

出版信息

Proteins. 2004 Apr 1;55(1):34-43. doi: 10.1002/prot.10399.

Abstract

Antiestradiol antibody 57-2 binds 17beta-estradiol (E2) with moderately high affinity (K(a) = 5 x 10(8) M(-1)). The structurally related natural estrogens estrone and estriol as well synthetic 17-deoxy-estradiol and 17alpha-estradiol are bound to the antibody with 3.7-4.9 kcal mol(-1) lower binding free energies than E2. Free energy perturbation (FEP) simulations and the molecular mechanics-Poisson-Boltzmann surface area (MM-PBSA) method were applied to investigate the factors responsible for the relatively low cross-reactivity of the antibody with these four steroids, differing from E2 by the substituents of the steroid D-ring. In addition, computational alanine scanning of the binding site residues was carried out with the MM-PBSA method. Both the FEP and MM-PBSA methods reproduced the experimental relative affinities of the five steroids in good agreement with experiment. On the basis of FEP simulations, the number of hydrogen bonds formed between the antibody and steroids, which varied from 0 to 3 in the steroids studied, determined directly the magnitude of the steroid-antibody interaction free energies. One hydrogen bond was calculated to contribute about 3 kcal mol(-1) to the interaction energy. Because the relative binding free energies of estrone (two antibody-steroid hydrogen bonds), estriol (three hydrogen bonds), 17-deoxy-estradiol (no hydrogen bonds), and 17alpha-estradiol (two hydrogen bonds) are close to each other and clearly lower than that of E2 (three hydrogen bonds), the water-steroid interactions lost upon binding to the antibody make an important contribution to the binding free energies. The MM-PBSA calculations showed that the binding of steroids to the antiestradiol antibody is driven by van der Waals interactions, whereas specificity is solely due to electrostatic interactions. In addition, binding of steroids to the antiestradiol antibody 57-2 was compared to the binding to the antiprogesterone antibody DB3 and antitestosterone antibody 3-C4F5, studied earlier with the MM-PBSA method.

摘要

抗雌二醇抗体57-2以中等偏高的亲和力(K(a)=5×10(8) M(-1))结合17β-雌二醇(E2)。结构相关的天然雌激素雌酮和雌三醇以及合成的17-脱氧雌二醇和17α-雌二醇与该抗体结合时,其结合自由能比E2低3.7-4.9千卡/摩尔。应用自由能微扰(FEP)模拟和分子力学-泊松-玻尔兹曼表面积(MM-PBSA)方法,研究了导致该抗体与这四种甾体相对低交叉反应性的因素,这四种甾体与E2的区别在于甾体D环的取代基。此外,使用MM-PBSA方法对结合位点残基进行了计算丙氨酸扫描。FEP和MM-PBSA方法都很好地重现了这五种甾体的实验相对亲和力。基于FEP模拟,抗体与甾体之间形成的氢键数量(在所研究的甾体中从0到3不等)直接决定了甾体-抗体相互作用自由能的大小。计算得出一个氢键对相互作用能的贡献约为3千卡/摩尔。由于雌酮(两个抗体-甾体氢键)、雌三醇(三个氢键)、17-脱氧雌二醇(无氢键)和17α-雌二醇(两个氢键)的相对结合自由能彼此接近且明显低于E2(三个氢键)的,与抗体结合时失去的水-甾体相互作用对结合自由能有重要贡献。MM-PBSA计算表明,甾体与抗雌二醇抗体的结合是由范德华相互作用驱动的,而特异性仅归因于静电相互作用。此外,将甾体与抗雌二醇抗体57-2的结合与之前用MM-PBSA方法研究的与抗孕酮抗体DB3和抗睾酮抗体3-C4F5的结合进行了比较。

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