Selection, identification and crystal structure of shark-derived single-domain antibodies against a green fluorescent protein

绿色荧光蛋白 表位 荧光 免疫染色 抗体 单域抗体 荧光显微镜 化学 噬菌体展示 分子生物学 重组DNA 计算生物学 生物 生物物理学 生物化学 细胞生物学 基因 遗传学 免疫组织化学 物理 量子力学 免疫学
作者
Yu‐Lei Chen,Xin-Xin Xie,Peiyi Zheng,Chenchen Zhu,Huan Ma,Zunera Khalid,Yangjie Xie,Yi-Zhao Dang,Yaxin Ye,Nengyin Sheng,Ning Zhong,Wenhui Lei,Changgong Zhang,Ling‐Jing Zhang,Tengchuan Jin,Min‐Jie Cao
出处
期刊:International Journal of Biological Macromolecules [Elsevier BV]
卷期号:247: 125852-125852 被引量:6
标识
DOI:10.1016/j.ijbiomac.2023.125852
摘要

Shark variable domain of new antigen receptors (VNARs) are the smallest naturally occurring binding domains with properties of low complexity, small size, cytoplasmic expression, and ease of engineering. Green fluorescent protein (GFP) molecules have been analyzed in conventional microscopy, but their spectral characteristics preclude their use in techniques offering substantially higher resolution. Besides, the GFP molecules can be quenched in acidic environment, which makes it necessary to develop anti-GFP antibody to solve these problems. In view of the diverse applications of GFP and unique physicochemical features of VNAR, the present study aims to generate VNARs against GFP. Here, we identified 36 VNARs targeting eCGP123, an extremely stable GFP, by phage display from three immunized sharks. These VNARs bound to eCGP123 with affinity constant KD values ranging from 6.76 to 605 nM. Among them, two lead VNARs named aGFP-14 and aGFP-15 with nanomolar eCGP123-binding affinity were selected for in-depth characterization. aGFP-14 and aGFP-15 recognized similar epitopes on eCGP123. X-ray crystallography studies clarified the mechanism by which aGFP14 interacts with eCGP123. aGFP-14 also showed cross-reaction with EGFP, with KD values of 47.2 nM. Finally, immunostaining analyses demonstrated that aGFP-14 was able to bind effectively to the EGFP expressed in both cultured cells and mouse brain tissues, and can be used as a fluorescence amplifier for EGFP. Our research demonstrates a feasible idea for the screening and production of shark-derived VNARs. The two high-affinity VNARs developed in the study contribute to the diversity of GFP sdAbs and may enhance the applications of GFP.
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