Lin Wenwei, Li Yongtao, Yang Lei, Chen Taosheng
Department of Chemical Biology and Therapeutics, St. Jude Children's Research Hospital, 262 Danny Thomas Place, Mail Stop 1000, Memphis, Tennessee 38105, United States.
ACS Omega. 2020 Dec 29;6(1):680-695. doi: 10.1021/acsomega.0c05221. eCollection 2021 Jan 12.
The von Hippel-Lindau (VHL) tumor suppressor associates with transcription factors elongin-C and elongin-B to form the VHL-elongin-C-elongin-B protein complex and carry out its functions, such as degradation of hypoxia-inducible factors. VHL ligands are used not only to modulate hypoxia-signaling pathways and potentially treat chronic anemia or ischemia but also to form bivalent ligands as proteolysis-targeting chimeras to degrade proteins for potential therapeutic applications. Sensitive and selective VHL-based binding assays are critical for identifying and characterizing VHL ligands with high-throughput screening approaches. VHL ligand-binding assays, such as isothermal titration calorimetry, surface plasmon resonance, and fluorescence polarization assays, are reported but with limitations. Isothermal titration calorimetry requires higher protein concentrations with a lower throughput than fluorescence-based assays do. Surface plasmon resonance requires protein immobilization, which introduces variation and is not suitable for testing a large number of ligands. Fluorescence polarization can be sensitive with high-throughput capability but is susceptible to assay interference, and small-molecule-based fluorescent probes are not available. We developed the first small-molecule-based high-affinity VHL fluorescent probe BODIPY FL VH032 (), with a of 3.01 nM, for a time-resolved fluorescence resonance energy-transfer assay. This new assay is sensitive, selective, resistant to assay interference, and capable of characterizing VHL ligands with a wide range of affinities. It is also suitable for VHL ligand identification and characterization with high-throughput screening.
冯·希佩尔-林道(VHL)肿瘤抑制因子与转录因子延伸蛋白C和延伸蛋白B结合,形成VHL-延伸蛋白C-延伸蛋白B蛋白复合物并发挥其功能,如降解缺氧诱导因子。VHL配体不仅用于调节缺氧信号通路并可能治疗慢性贫血或局部缺血,还用于形成双价配体作为靶向蛋白水解的嵌合体,以降解蛋白质用于潜在的治疗应用。灵敏且选择性的基于VHL的结合测定对于通过高通量筛选方法鉴定和表征VHL配体至关重要。已有报道VHL配体结合测定,如等温滴定量热法、表面等离子体共振和荧光偏振测定,但都存在局限性。等温滴定量热法需要更高的蛋白质浓度,通量低于基于荧光的测定。表面等离子体共振需要固定蛋白质,这会引入变化且不适用于测试大量配体。荧光偏振可以灵敏且具有高通量能力,但易受测定干扰影响,并且基于小分子的荧光探针不可用。我们开发了首个基于小分子的高亲和力VHL荧光探针BODIPY FL VH032(),解离常数为3.01 nM,用于时间分辨荧光共振能量转移测定。这种新测定灵敏、选择性高、抗测定干扰,并且能够表征具有广泛亲和力的VHL配体。它也适用于通过高通量筛选鉴定和表征VHL配体。