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利用计算机分析和表面等离子体共振技术对 CDR3 移植的 VHH 进行亲和力成熟。

Affinity maturation of a CDR3-grafted VHH using in silico analysis and surface plasmon resonance.

机构信息

Kyowa Hakko Kirin Co., Ltd., 3-6-6 Asahi-machi, Machida, Tokyo 194-8533; and Department of Bioinformatics, Graduate School of Medicine, Chiba University, Chiba 260-8670, Japan.

出版信息

J Biochem. 2013 Oct;154(4):325-32. doi: 10.1093/jb/mvt058. Epub 2013 Jul 31.

Abstract

A requirement for advancing antibody-based medicine is the development of proteins that can bind with high affinity to a specific epitope related to a critical protein activity site. As a part of generating such proteins, we have succeeded in creating a binding protein without changing epitope by complementarity-determining region 3 (CDR3) grafting (Inoue et al., Affinity transfer to a human protein by CDR3 grafting of camelid VHH. Protein Sci. 20, 1971-1981). However, the affinity of the target-binding protein was low. In this manuscript, the affinity maturation of a target-binding protein was examined using CDR3-grafted camelid single domain antibody (VHH) as a model protein. Several amino acids in the CDR1 and CDR2 regions of VHH were mutated to tyrosines and/or serines and screened for affinity-matured proteins by using in silico analysis. The mutation of two amino acids in the CDR2 region to arginine and/or aspartic acid increased the affinity by decreasing the dissociation rate. The affinity of designed mutant increased by ∼20-fold over that of the original protein. In the present study, candidate mutants were narrowed down using in silico screening and computational modelling, thus avoiding much in vitro analytical effort. Therefore, the method used in this study is expected to be one of the useful for promoting affinity maturation of antibodies.

摘要

开发能够与关键蛋白活性位点相关的特定表位高亲和力结合的蛋白质是推进抗体药物发展的要求。作为生成此类蛋白质的一部分,我们通过互补决定区 3 (CDR3) 移植成功地创造了一种不改变表位的结合蛋白(Inoue 等人,通过骆驼科 VHH 的 CDR3 移植将亲和力转移到人蛋白上。蛋白质科学。20,1971-1981)。然而,目标结合蛋白的亲和力较低。在本手稿中,使用 CDR3 移植的骆驼科单域抗体 (VHH) 作为模型蛋白,研究了目标结合蛋白的亲和力成熟。通过使用计算机分析筛选对 VHH 的 CDR1 和 CDR2 区域中的几个氨基酸进行突变以形成酪氨酸和/或丝氨酸,并筛选出亲和力成熟的蛋白质。CDR2 区域中的两个氨基酸突变为精氨酸和/或天冬氨酸可通过降低解离速率来提高亲和力。设计突变体的亲和力比原始蛋白提高了约 20 倍。在本研究中,使用计算机筛选和计算建模缩小了候选突变体的范围,从而避免了大量的体外分析工作。因此,本研究中使用的方法有望成为促进抗体亲和力成熟的有用方法之一。

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