Department of Biophysics and Chemical Biology, CRI Center for Chemical Proteomics, Seoul National University, Seoul 151-747, Korea.
Department of Chemistry, Seoul National University, Seoul 151-747, Korea.
Nat Commun. 2016 Oct 24;7:13196. doi: 10.1038/ncomms13196.
Diversity-oriented synthesis (DOS) can provide a collection of diverse and complex drug-like small molecules, which is critical in the development of new chemical probes for biological research of undruggable targets. However, the design and synthesis of small-molecule libraries with improved biological relevance as well as maximized molecular diversity represent a key challenge. Herein, we employ functional group-pairing strategy for the DOS of a chemical library containing privileged substructures, pyrimidodiazepine or pyrimidine moieties, as chemical navigators towards unexplored bioactive chemical space. To validate the utility of this DOS library, we identify a new small-molecule inhibitor of leucyl-tRNA synthetase-RagD protein-protein interaction, which regulates the amino acid-dependent activation of mechanistic target of rapamycin complex 1 signalling pathway. This work highlights that privileged substructure-based DOS strategy can be a powerful research tool for the construction of drug-like compounds to address challenging biological targets.
导向多样性合成(DOS)可以提供一系列多样且复杂的类药物小分子,这对于开发针对不可成药靶标的新的化学探针在生物研究中至关重要。然而,设计和合成具有改善的生物学相关性以及最大化分子多样性的小分子文库是一个关键挑战。在此,我们采用基团配对策略对包含嘧啶二氮杂卓或嘧啶部分等优势结构的化学文库进行导向多样性合成,将其作为探索未知的生物活性化学空间的化学导航器。为了验证该 DOS 文库的实用性,我们鉴定了亮氨酰-tRNA 合成酶-RagD 蛋白-蛋白相互作用的新型小分子抑制剂,该抑制剂调节雷帕霉素复合物 1 信号通路的氨基酸依赖性激活。这项工作强调了基于优势结构的 DOS 策略可以成为构建类药物化合物以解决挑战性生物靶标的有力研究工具。