Craven Gregory B, Armstrong Alan, Mann David J
Department of Life Sciences, Imperial College London, South Kensington Campus, London SW7 2AZ, UK.
Department of Chemistry, Imperial College London, Molecular Sciences Research Hub, White City Campus, Wood Lane, London, W12 0BZ, UK.
Bio Protoc. 2020 Dec 20;10(24):e3855. doi: 10.21769/BioProtoc.3855.
Small molecules that react to form covalent bonds with proteins are widely used as biological tools and therapeutic agents. Screening cysteine-reactive fragments against a protein target is an efficient way to identify chemical starting points for covalent probe development. Mass spectrometry is often used to identify the site and degree of covalent fragment binding. However, robust hit identification requires characterization of the kinetics of covalent binding that can be readily achieved using quantitative irreversible tethering. This screening platform uses a non-specific cysteine-reactive fluorogenic probe to monitor the rate of reaction between covalent fragments and cysteine containing biomolecules. Fragment libraries are simultaneously screened against the target protein and glutathione, which functions as a control, to identify hit fragments with kinetic selectivity for covalent modification of the target. Screening by quantitative irreversible tethering accounts for variations in the intrinsic reactivity of individual fragments enabling robust hit identification and ranking.
与蛋白质反应形成共价键的小分子被广泛用作生物工具和治疗剂。针对蛋白质靶点筛选对半胱氨酸有反应的片段是确定共价探针开发化学起始点的有效方法。质谱法常用于确定共价片段结合的位点和程度。然而,可靠的命中物鉴定需要对共价结合动力学进行表征,而这可以通过定量不可逆连接轻松实现。该筛选平台使用一种非特异性的对半胱氨酸有反应的荧光探针来监测共价片段与含半胱氨酸生物分子之间的反应速率。针对目标蛋白和作为对照的谷胱甘肽同时筛选片段库,以鉴定对目标共价修饰具有动力学选择性的命中片段。通过定量不可逆连接进行筛选考虑了各个片段固有反应性的差异,从而能够进行可靠的命中物鉴定和排名。