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重组抗体工程实现可逆结合用于连续蛋白质生物传感。

Recombinant Antibody Engineering Enables Reversible Binding for Continuous Protein Biosensing.

作者信息

Fercher Christian, Jones Martina L, Mahler Stephen M, Corrie Simon R

机构信息

Australian Institute for Bioengineering and Nanotechnology, ARC Training Centre for Biopharmaceutical Innovation, The University of Queensland, St. Lucia, Queensland, 4072 Australia.

Australian Institute for Bioengineering and Nanotechnology, ARC Centre of Excellence in Convergent Bio-Nano Science and Technology, The University of Queensland, St. Lucia, Queensland, 4072 Australia.

出版信息

ACS Sens. 2021 Mar 26;6(3):764-776. doi: 10.1021/acssensors.0c01510. Epub 2021 Jan 22.

Abstract

Engineering antibodies to improve target specificity, reduce detection limits, or introduce novel functionality is an important research area for biosensor development. While various affinity biosensors have been developed to generate an output signal upon varying analyte concentrations, reversible and continuous protein monitoring in complex biological samples remains challenging. Herein, we explore the concept of directed evolution to modulate dissociation kinetics of a high affinity anti-epidermal growth factor receptor (EGFR) single-chain variable antibody fragment (scFv) to enable continuous protein sensing in a label-free binding assay. A mutant scFv library was generated from the wild type (WT) fragment via targeted permutation of four residues in the antibody-antigen-binding interface. A single round of phage display biopanning complemented with high-throughput screening methods then permitted isolation of a specific binder with fast reaction kinetics. We were able to obtain ∼30 times faster dissociation rates when compared to the WT without appreciably affecting overall affinity and specificity by targeting a single paratope that is known to contribute to the binding interaction. Suitability of a resulting mutant fragment to sense varying antigen concentrations in continuous mode was demonstrated in a modified label-free binding assay, achieving low nanomolar detection limits ( = 8.39 nM). We also confirmed these results using an independent detection mechanism developed previously by our group, incorporating a polarity-dependent fluorescent dye into the scFv and reading out EGFR binding based on fluorescence wavelength shifts. In future, this generic approach could be employed to generate improved or novel binders for proteins of interest, ready for deployment in a broad range of assay platforms.

摘要

工程化抗体以提高靶标特异性、降低检测限或引入新功能是生物传感器开发的一个重要研究领域。虽然已经开发了各种亲和生物传感器以在分析物浓度变化时产生输出信号,但在复杂生物样品中进行可逆和连续的蛋白质监测仍然具有挑战性。在此,我们探索定向进化的概念,以调节高亲和力抗表皮生长因子受体(EGFR)单链可变抗体片段(scFv)的解离动力学,从而在无标记结合测定中实现连续蛋白质传感。通过对抗体-抗原结合界面中的四个残基进行靶向置换,从野生型(WT)片段生成了一个突变scFv文库。然后,通过一轮噬菌体展示生物淘选与高通量筛选方法相结合,分离出了具有快速反应动力学的特异性结合剂。通过靶向一个已知有助于结合相互作用的单一互补决定区,我们能够获得比WT快约30倍的解离速率,而不会明显影响整体亲和力和特异性。在改进的无标记结合测定中证明了所得突变片段以连续模式传感不同抗原浓度的适用性,实现了低纳摩尔检测限( = 8.39 nM)。我们还使用我们小组先前开发的一种独立检测机制证实了这些结果,该机制将一种极性依赖性荧光染料掺入scFv中,并根据荧光波长偏移读出EGFR结合。未来,这种通用方法可用于生成针对感兴趣蛋白质的改进型或新型结合剂,以便在广泛的检测平台中部署。

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