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利用 DNA 折纸表位捕获瞬态抗体构象。

Capturing transient antibody conformations with DNA origami epitopes.

机构信息

CAS Key Laboratory of Interfacial Physics and Technology, Shanghai Institute of Applied Physics, Chinese Academy of Sciences, University of Chinese Academy of Sciences, Shanghai, 201800, China.

School of Chemistry and Chemical Engineering, Frontiers Science Center for Transformative Molecules, Institute of Translational Medicine, Shanghai, 200240, China.

出版信息

Nat Commun. 2020 Jun 19;11(1):3114. doi: 10.1038/s41467-020-16949-4.

Abstract

Revealing antibody-antigen interactions at the single-molecule level will deepen our understanding of immunology. However, structural determination under crystal or cryogenic conditions does not provide temporal resolution for resolving transient, physiologically or pathologically relevant functional antibody-antigen complexes. Here, we develop a triangular DNA origami framework with site-specifically anchored and spatially organized artificial epitopes to capture transient conformations of immunoglobulin Gs (IgGs) at room temperature. The DNA origami epitopes (DOEs) allows programmed spatial distribution of epitope spikes, which enables direct imaging of functional complexes with atomic force microscopy (AFM). We establish the critical dependence of the IgG avidity on the lateral distance of epitopes within 3-20 nm at the single-molecule level. High-speed AFM imaging of transient conformations further provides structural and dynamic evidence for the IgG avidity from monovalent to bivalent in a single event, which sheds light on various applications including virus neutralization, diagnostic detection and cancer immunotherapy.

摘要

揭示单分子水平上的抗体-抗原相互作用将加深我们对免疫学的理解。然而,在晶体或低温条件下进行结构测定并不能提供解决瞬时、生理或病理相关功能抗体-抗原复合物的时间分辨率。在这里,我们开发了一种具有特定位置锚定和空间组织的人工表位的三角形 DNA 折纸框架,以在室温下捕获免疫球蛋白 G(IgG)的瞬时构象。DNA 折纸表位(DOE)允许表位刺的编程空间分布,这使得可以使用原子力显微镜(AFM)直接对功能复合物进行成像。我们在单分子水平上建立了 IgG 亲和力与表位在 3-20nm 内的侧向距离之间的关键依赖性。瞬时构象的高速 AFM 成像进一步提供了结构和动态证据,证明 IgG 亲和力从单价到二价在单个事件中发生,这为包括病毒中和、诊断检测和癌症免疫治疗在内的各种应用提供了启示。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0051/7305102/785d1c139d3f/41467_2020_16949_Fig1_HTML.jpg

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