Conformational selection of allergen-antibody complexes-surface plasticity of paratopes and epitopes.

IF 2.6 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Monica L Fernández-Quintero, Johannes R Loeffler, Franz Waibl, Anna S Kamenik, Florian Hofer, Klaus R Liedl
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引用次数: 0

Abstract

Antibodies have the ability to bind various types of antigens and to recognize different antibody-binding sites (epitopes) of the same antigen with different binding affinities. Due to the conserved structural framework of antibodies, their specificity to antigens is mainly determined by their antigen-binding site (paratope). Therefore, characterization of epitopes in combination with describing the involved conformational changes of the paratope upon binding is crucial in understanding and predicting antibody-antigen binding. Using molecular dynamics simulations complemented with strong experimental structural information, we investigated the underlying binding mechanism and the resulting local and global surface plasticity in the binding interfaces of distinct antibody-antigen complexes. In all studied allergen-antibody complexes, we clearly observe that experimentally suggested epitopes reveal less plasticity, while non-epitope regions show high surface plasticity. Surprisingly, the paratope shows higher conformational diversity reflected in substantially higher surface plasticity, compared to the epitope. This work allows a visualization and characterization of antibody-antigen interfaces and might have strong implications for antibody-antigen docking and in the area of epitope prediction.

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过敏原-抗体复合物的构象选择--副基团和表位的表面可塑性。
抗体能够与各种类型的抗原结合,并以不同的结合亲和力识别同一抗原的不同抗体结合位点(表位)。由于抗体的结构框架是保守的,因此抗体对抗原的特异性主要由其抗原结合位点(副位点)决定。因此,表位的特征描述结合描述副表位在结合时的构象变化,对于理解和预测抗体与抗原的结合至关重要。我们利用分子动力学模拟并辅以强大的实验结构信息,研究了不同抗体-抗原复合物结合界面的基本结合机制以及由此产生的局部和全局表面可塑性。在所有研究的过敏原-抗体复合物中,我们清楚地观察到实验所建议的表位显示出较低的可塑性,而非表位区域则显示出较高的表面可塑性。令人惊讶的是,与表位点相比,副表位点显示出更高的构象多样性,这反映在更高的表面可塑性上。这项工作使抗体-抗原界面的可视化和特征描述成为可能,对抗体-抗原对接和表位预测领域具有重大意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Protein Engineering Design & Selection
Protein Engineering Design & Selection 生物-生化与分子生物学
CiteScore
3.30
自引率
4.20%
发文量
14
审稿时长
6-12 weeks
期刊介绍: Protein Engineering, Design and Selection (PEDS) publishes high-quality research papers and review articles relevant to the engineering, design and selection of proteins for use in biotechnology and therapy, and for understanding the fundamental link between protein sequence, structure, dynamics, function, and evolution.
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