State Key Laboratory of Chemical Biology and Drug Discovery, Department of Applied Biology and Chemical Technology, The Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong, SAR 999077, P. R. China.
The Hong Kong Polytechnic University Shenzhen Research Institute, Shenzhen, 518057, P. R. China.
ChemMedChem. 2023 Oct 4;18(19):e202300271. doi: 10.1002/cmdc.202300271. Epub 2023 Sep 5.
RNA structures, including those formed from coding and noncoding RNAs, alternative to protein-based drug targets, could be a promising target of small molecules for drug discovery against various human diseases, particularly in anticancer, antibacterial and antivirus development. The normal cellular activity of cells is critically dependent on the function of various RNA molecules generated from DNA transcription. Moreover, many studies support that mRNA-targeting small molecules may regulate the synthesis of disease-related proteins via the non-covalent mRNA-ligand interactions that do not involve gene modification. RNA-ligand interaction is thus an attractive approach to address the challenge of "undruggable" proteins in drug discovery because the intracellular activity of these proteins is hard to be suppressed with small molecule ligands. We selectively surveyed a specific area of RNA structure-selective small molecule ligands in fluorescence live cell imaging and drug discovery because the area was currently underexplored. This state-of-the-art review thus mainly focuses on the research published within the past three years and aims to provide the most recent information on this research area; hopefully, it could be complementary to the previously reported reviews and give new insights into the future development on RNA-specific small molecule ligands for live cell imaging and drug discovery.
RNA 结构,包括来自编码和非编码 RNA 的结构,替代蛋白质作为药物靶点,可能成为小分子药物发现针对各种人类疾病的有前途的目标,特别是在抗癌、抗菌和抗病毒药物的开发方面。细胞的正常细胞活动严重依赖于从 DNA 转录生成的各种 RNA 分子的功能。此外,许多研究支持,通过不涉及基因修饰的 mRNA-配体非共价相互作用,靶向 mRNA 的小分子可以调节与疾病相关的蛋白质的合成。因此,RNA-配体相互作用是解决药物发现中“不可成药”蛋白挑战的一种有吸引力的方法,因为这些蛋白的细胞内活性很难用小分子配体抑制。我们选择性地调查了荧光活细胞成像和药物发现中 RNA 结构选择性小分子配体的特定领域,因为该领域目前尚未得到充分探索。因此,这篇最新综述主要关注过去三年发表的研究,并旨在提供该研究领域的最新信息;希望它可以补充以前报道的综述,并为未来针对活细胞成像和药物发现的 RNA 特异性小分子配体的发展提供新的见解。