Université de Bordeaux, CNRS, Bordeaux INP, CBMN, UMR 5248, Pessac, France.
European Institute of Chemistry and Biology (IECB), 2 rue Robert Escarpit, Pessac, France.
Nat Commun. 2024 Jul 23;15(1):6214. doi: 10.1038/s41467-024-50349-2.
Protein-protein interactions (PPIs) are central in cell metabolism but research tools for the structural and functional characterization of these PPIs are often missing. Here we introduce broadly applicable immunization (Cross-link PPIs and immunize llamas, ChILL) and selection strategies (Display and co-selection, DisCO) for the discovery of diverse nanobodies that either stabilize or disrupt PPIs in a single experiment. We apply ChILL and DisCO to identify competitive, connective, or fully allosteric nanobodies that inhibit or facilitate the formation of the SOS1•RAS complex and modulate the nucleotide exchange rate on this pivotal GTPase in vitro as well as RAS signalling in cellulo. One of these connective nanobodies fills a cavity that was previously identified as the binding pocket for a series of therapeutic lead compounds. The long complementarity-determining region (CDR3) that penetrates this binding pocket serves as pharmacophore for extending the repertoire of potential leads.
蛋白质-蛋白质相互作用(PPIs)在细胞代谢中起着核心作用,但用于这些 PPI 的结构和功能表征的研究工具往往缺失。在这里,我们介绍了广泛适用的免疫(交联 PPI 并免疫骆驼,ChILL)和选择策略(展示和共选择,DisCO),用于发现能够在单个实验中稳定或破坏 PPI 的多样化纳米抗体。我们应用 ChILL 和 DisCO 来鉴定竞争性、连接性或全变构纳米抗体,这些纳米抗体可以抑制或促进 SOS1•RAS 复合物的形成,并调节该关键 GTPase 的体外核苷酸交换率以及细胞内的 RAS 信号转导。其中一个连接性纳米抗体填补了以前被确定为一系列治疗先导化合物结合口袋的空腔。穿透该结合口袋的长互补决定区 3(CDR3)作为药效团,扩展了潜在先导化合物的库。