Wang Kaibo, Flaherty Daniel P, Chen Lan, Yang Danzhou
Department of Medicinal Chemistry and Molecular Pharmacology, College of Pharmacy, Purdue University, West Lafayette, IN, USA.
Purdue Center for Cancer Research, West Lafayette, IN, USA.
Methods Mol Biol. 2019;2035:323-331. doi: 10.1007/978-1-4939-9666-7_19.
Fluorescence resonance energy transfer (FRET) is a distance-dependent process by which energy is transferred from an excited donor fluorophore to an acceptor molecule when the donor and acceptor are in close proximity to each other. Depending on the assay design, FRET can provide a real-time measurement of structural integrity and dynamics of biomacromolecules in solution and is particularly suitable for studying G-quadruplex (G4) nucleic acids and their ligand interactions. FRET-based assays are ideally suited for high throughput screening (HTS) methodology because they are simple, sensitive, and easily automated. G4s are stable nucleic acid structures involved in important regulatory roles in gene replication, transcription, and genomic instability. Four-stranded G4s are promising drug targets as these non-canonical structures are enriched in oncogene promoters, 5' UTRs, and telomeres, and have been linked to regulation of gene expression in cancer and other diseases. Although molecules that bind to G4s, with subsequent influence on gene expression, have been well documented, the identification of new chemical scaffolds that potently and selectively bind to G4s and control specific gene expression are still much less common. Here, we describe a detailed protocol of a FRET-based HTS methodology to identify novel G4 ligands.
荧光共振能量转移(FRET)是一种依赖距离的过程,当供体荧光团和受体分子彼此靠近时,能量会从激发态的供体荧光团转移到受体分子。根据检测设计,FRET可以实时测量溶液中生物大分子的结构完整性和动力学,特别适用于研究G-四链体(G4)核酸及其配体相互作用。基于FRET的检测非常适合高通量筛选(HTS)方法,因为它们简单、灵敏且易于自动化。G4是稳定的核酸结构,在基因复制、转录和基因组不稳定性中发挥重要的调控作用。四链G4是有前景的药物靶点,因为这些非经典结构在癌基因启动子、5'非翻译区(UTR)和端粒中富集,并与癌症和其他疾病中的基因表达调控有关。尽管已经有充分的文献记载了与G4结合并随后影响基因表达的分子,但能够有效且选择性地结合G4并控制特定基因表达的新型化学支架的鉴定仍然相对较少。在这里,我们描述了一种基于FRET的HTS方法的详细方案,用于鉴定新型G4配体。