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表征 CDR-H3 环构象集合与抗体结合特性的关系的多样性。

Characterizing the Diversity of the CDR-H3 Loop Conformational Ensembles in Relationship to Antibody Binding Properties.

机构信息

Center for Molecular Biosciences Innsbruck (CMBI), Institute of General, Inorganic and Theoretical Chemistry, University of Innsbruck, Innsbruck, Austria.

出版信息

Front Immunol. 2019 Jan 7;9:3065. doi: 10.3389/fimmu.2018.03065. eCollection 2018.

Abstract

We present an approach to assess antibody CDR-H3 loops according to their dynamic properties using molecular dynamics simulations. We selected six antibodies in three pairs differing substantially in their individual promiscuity respectively specificity. For two pairs of antibodies crystal structures are available in different states of maturation and used as starting structures for the analyses. For a third pair we chose two antibody CDR sequences obtained from a synthetic library and predicted the respective structures. For all three pairs of antibodies we performed metadynamics simulations to overcome the limitations in conformational sampling imposed by high energy barriers. Additionally, we used classic molecular dynamics simulations to describe nano- to microsecond flexibility and to estimate up to millisecond kinetics of captured conformational transitions. The methodology represents the antibodies as conformational ensembles and allows comprehensive analysis of structural diversity, thermodynamics of conformations and kinetics of structural transitions. Referring to the concept of conformational selection we investigated the link between promiscuity and flexibility of the antibodies' binding interfaces. The obtained detailed characterization of the binding interface clearly indicates a link between structural flexibility and binding promiscuity for this set of antibodies.

摘要

我们提出了一种使用分子动力学模拟根据抗体 CDR-H3 环的动态特性来评估抗体 CDR-H3 环的方法。我们选择了三个配对的六个抗体,它们各自的交叉反应性和特异性有很大差异。对于两对抗体,晶体结构在不同的成熟状态下可用,并用作分析的起始结构。对于第三对,我们选择了从合成文库中获得的两个抗体 CDR 序列,并预测了相应的结构。对于所有三对抗体,我们都进行了元动力学模拟,以克服由于高能量障碍而导致的构象采样限制。此外,我们还使用经典分子动力学模拟来描述纳秒到微秒的柔韧性,并估计捕获构象转变的毫秒级动力学。该方法将抗体表示为构象系综,并允许对结构多样性、构象热力学和结构转变动力学进行全面分析。参考构象选择的概念,我们研究了抗体结合界面的交叉反应性和柔韧性之间的联系。对结合界面的详细特征表明,对于这组抗体,结构柔韧性和结合交叉反应性之间存在联系。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3930/6330313/a4b207d981b4/fimmu-09-03065-g0001.jpg

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