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使用计算机辅助分子建模、配体结合和光谱技术对单克隆抗体NC6.8结合位点结构的预测。

Structural predictions of the binding site architecture for monoclonal antibody NC6.8 using computer-aided molecular modeling, ligand binding, and spectroscopy.

作者信息

Viswanathan M, Anchin J M, Droupadi P R, Mandal C, Linthicum D S, Subramaniam S

机构信息

Department of Physiology and Biophysics, Beckman Institute, University of Illinois, Urbana 61801, USA.

出版信息

Biophys J. 1995 Sep;69(3):741-53. doi: 10.1016/S0006-3495(95)79950-7.

Abstract

Monoclonal antibody NC6.8 binds the superpotent sweetener ligand N-(p-cyanophenyl)-N'-(diphenylmethyl) guanidineacetic acid with high affinity (Kd = 53 nM). Using computer-aided molecular modeling and several experimental techniques, such as competitive ligand binding, absorbance spectroscopy, and fluorescence spectroscopy, we have predicted the structure of the variable domain fragment (Fv) and identified the key residues in the combining site of the antibody. We have identified nine specific amino acids as being involved in ligand recognition and complexation. Most notable are H:33W, which is responsible for ligand-induced tryptophan fluorescence quenching, H:56R, which forms a salt bridge with the carboxylate moiety of the ligand, and L:34H, which, deep in the binding site, interacts with the cyanophenyl portion of the ligand. Two residues located deep in the putative binding pocket, H:35E and H:50E, provide the negatively charged potential for interaction with the protonated aryl nitrogen and the positive guanidinium group. These modeling predictions were made before the solution of high-resolution structures of the native Fab (2.6 A) and the Fab-ligand complex (2.2 A). Comparisons between the theoretical model and experimental native and liganded Fab structures are made.

摘要

单克隆抗体NC6.8以高亲和力(解离常数Kd = 53 nM)结合超强甜味剂配体N-(对氰基苯基)-N'-(二苯甲基)胍基乙酸。通过计算机辅助分子建模以及竞争性配体结合、吸光光谱和荧光光谱等多种实验技术,我们预测了可变结构域片段(Fv)的结构,并确定了抗体结合位点中的关键残基。我们已确定九个特定氨基酸参与配体识别和络合。最值得注意的是H:33W,它导致配体诱导的色氨酸荧光猝灭;H:56R,它与配体的羧酸盐部分形成盐桥;以及L:34H,它位于结合位点深处,与配体的氰基苯基部分相互作用。位于假定结合口袋深处的两个残基H:35E和H:50E,为与质子化的芳基氮和正胍基团的相互作用提供了带负电荷的电势。这些建模预测是在天然Fab(2.6 Å)和Fab-配体复合物(2.2 Å)的高分辨率结构解析之前做出的。文中对理论模型与实验得到的天然和结合配体的Fab结构进行了比较。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f972/1236304/9f87406d8f8c/biophysj00057-0014-a.jpg

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