Ligand-Directed GPCR Antibody Discovery

表位 G蛋白偶联受体 抗体 配体(生物化学) 计算生物学 生物 噬菌体展示 抗体库 受体 免疫学 生物化学
作者
Qi Zhao,Amanda Chapman,Yan Huang,Mary Ferguson,Shannon McBride,Meghan Kelly,Michael P. Weiner,Xiaofeng Li
出处
期刊:Methods in molecular biology [Springer Science+Business Media]
卷期号:: 319-342 被引量:1
标识
DOI:10.1007/978-1-0716-1811-0_19
摘要

Developing affinity reagents recognizing and modulating G-protein coupled receptors (GPCR) function by traditional animal immunization or in vitro screening methods is challenging. Some anti-GPCR antibodies exist on the market, but the success rate of development is still poor compared with antibodies targeting soluble or peripherally anchored proteins. More importantly, most of these antibodies do not modulate GPCR function. The current pipeline for antibody development primarily screens for overall affinity rather than functional epitope recognition. We developed a new strategy utilizing natural ligand affinity to generate a library of antibody variants with an inherent bias toward the active site of the GPCR. Instead of using phage libraries displaying antibodies with random CDR sequences at polymorphism sites observed in natural immune repertoire sequences, we generated focused antibody libraries with a natural ligand encoded within or conjugated to one of the CDRs or the N-terminus. To tailor antibody binding to the active site, we limited the sequence randomization of the antibody in regions holstering the ligand while leaving the ligand-carrying part unaltered in the first round of randomization. With hits from the successful first round, the second round of randomization of the ligand-carrying part was then performed to eliminate the bias of the ligand. Based on our results on three different GPCR targets, the proposed pipeline will enable the rapid generation of functional antibodies (both agonists and antagonists) against high-value targets with poor function epitope exposures including GPCR, channels, transporters as well as cell surface targets whose binding site is heavily masked by glycosylation.
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