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针对酵母异-1-细胞色素c的单克隆抗体的精细特异性研究。

A study of fine specificity of monoclonal antibodies to yeast iso-1-cytochrome c.

作者信息

Silvestri I, Taniuchi H

机构信息

Laboratory of Chemical Biology, National Institutes of Diabetes and Digestive and Kidney Diseases, Bethesda, Maryland 20892.

出版信息

J Biol Chem. 1988 Dec 15;263(35):18702-15.

PMID:2848803
Abstract

Seven monoclonal antibodies, prepared to yeast holo- or apo-iso-1-cytochrome c by the method of Köhler and Milstein (Goding, J. W. (1983) Monoclonal Antibodies: Principles and Practice, Academic Press, Orlando, FL) were characterized by cross-reaction with a panel of evolutionarily related cytochromes c, apocytochromes c, fragments and homologous and hybrid fragment complexes, inhibition, competitive inhibition, and complementation and fluorescence titration. The results have permitted us to assign the specifically recognized amino acids as follows. IgG1 monoclonals: 4-74-6, Leu-63 and/or Asn-67 and/or Asn-68; 4-128-6, Glu-93; 4-145-10, Thr-74; 2-96-12, Asp-65; 2-34-19, Lys-59; and 10-28-86, trimethyl-lysine 77. IgM monoclonal 39-14, Pro-30 and His-31. With mAb 4-128-6 substitution of glutamic acid 93 with alanine, as it occurs in Candida cytochrome c, has resulted in a decrease in affinity by a factor of 10(4). A calculation appears to show that this value is too large to be accounted for solely by the sum of energy losses due to disruption of charge neutralization and changes of hydrophobic interaction including van der Waals interaction. This and similar results with mAb 10-28-86 have led us to the idea that some new extra interatomic interaction sensitive to differences in configuration of atomic groups may be present and perturbed in the substitution. Furthermore, the assumption of the presence of such interaction can explain the striking similarity between the antigen-antibody interaction (e.g. Geysen, H. M., Meloen, R. H., and Barteling, S. J. (1984) Proc. Natl. Acad. Sci. U.S.A. 81, 3998-4002) and a model system of horse cytochrome c three-fragment complex (Juillerat, M. A., and Taniuchi, H. (1986) J. Biol. Chem. 261, 2697-2711) with respect to the high specificity of interacting residues in the interface. Thus, by analogy to the hypothesis developed in the model system (Fisher, A., and Taniuchi, H. (1988) FASEB J. 2, A1338), we hypothesize that a closed interaction loop would be formed on the basis of contacting groups including glutamic acid 93 across or within the interface between the antigen and mAb 4-128-6 and mediate delocalized interaction to generate extra binding energy.

摘要

通过科勒和米尔斯坦方法(戈丁,J.W.(1983年)《单克隆抗体:原理与实践》,学术出版社,佛罗里达州奥兰多)制备的七种针对酵母全或脱辅基异-1-细胞色素c的单克隆抗体,通过与一组进化相关的细胞色素c、脱辅基细胞色素c、片段以及同源和杂交片段复合物的交叉反应、抑制、竞争性抑制、互补和荧光滴定进行了表征。结果使我们能够确定特异性识别的氨基酸如下。IgG1单克隆抗体:4-74-6,亮氨酸-63和/或天冬酰胺-67和/或天冬酰胺-68;4-128-6,谷氨酸-93;4-145-10,苏氨酸-74;2-96-12,天冬氨酸-65;2-34-19,赖氨酸-59;以及10-28-86,三甲基赖氨酸77。IgM单克隆抗体39-14,脯氨酸-30和组氨酸-31。对于单克隆抗体4-128-6,如念珠菌细胞色素c中那样,将谷氨酸93替换为丙氨酸导致亲和力降低了10⁴倍。计算结果似乎表明,这个值太大,不能仅由电荷中和破坏以及包括范德华相互作用在内的疏水相互作用变化所导致的能量损失总和来解释。单克隆抗体10-28-86的这一结果以及类似结果使我们想到,可能存在一些对原子基团构型差异敏感的新的额外原子间相互作用,并且在替换中受到了干扰。此外,这种相互作用存在的假设可以解释抗原 - 抗体相互作用(例如,盖森,H.M.,梅洛恩,R.H.,和巴特尔林,S.J.(1984年)《美国国家科学院院刊》81,3998 - 4002)与马细胞色素c三片段复合物模型系统(朱耶拉,M.A.,和谷内,H.(1986年)《生物化学杂志》261,2697 - 2711)在界面处相互作用残基的高特异性方面的惊人相似性。因此,类似于模型系统中提出的假设(费舍尔,A.,和谷内,H.(1988年)《美国实验生物学会联合会杂志》2,A1338),我们假设在抗原和单克隆抗体4-128-6之间的界面上或跨界面,基于包括谷氨酸93在内的接触基团会形成一个封闭的相互作用环,并介导离域相互作用以产生额外的结合能。

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