Schuhknecht Laurentz, Ortmayr Karin, Jänes Jürgen, Bläsi Martina, Panoussis Eleni, Bors Sebastian, Dorčáková Terézia, Fuhrer Tobias, Beltrao Pedro, Zampieri Mattia
Department of Biomedicine, University of Basel, Basel, Switzerland.
Institute of Molecular Systems Biology ETH Zürich, Zürich, Switzerland.
Nat Biotechnol. 2025 Jan 28. doi: 10.1038/s41587-024-02524-5.
Understanding a small molecule's mode of action (MoA) is essential to guide the selection, optimization and clinical development of lead compounds. In this study, we used high-throughput non-targeted metabolomics to profile changes in 2,269 putative metabolites induced by 1,520 drugs in A549 lung cancer cells. Although only 26% of the drugs inhibited cell growth, 86% caused intracellular metabolic changes, which were largely conserved in two additional cancer cell lines. By testing more than 3.4 million drug-metabolite dependencies, we generated a lookup table of drug interference with metabolism, enabling high-throughput characterization of compounds across drug therapeutic classes in a single-pass screen. The identified metabolic changes revealed previously unknown effects of drugs, expanding their MoA annotations and potential therapeutic applications. We confirmed metabolome-based predictions for four new glucocorticoid receptor agonists, two unconventional 3-hydroxy-3-methylglutaryl-CoA (HMGCR) inhibitors and two dihydroorotate dehydrogenase (DHODH) inhibitors. Furthermore, we demonstrated that metabolome profiling complements other phenotypic and molecular profiling technologies, opening opportunities to increase the efficiency, scale and accuracy of preclinical drug discovery.
了解小分子的作用模式(MoA)对于指导先导化合物的选择、优化和临床开发至关重要。在本研究中,我们使用高通量非靶向代谢组学来分析1520种药物在A549肺癌细胞中诱导的2269种假定代谢物的变化。尽管只有26%的药物抑制细胞生长,但86%的药物引起细胞内代谢变化,这些变化在另外两种癌细胞系中基本保持一致。通过测试超过340万种药物-代谢物依赖性,我们生成了一个药物对代谢干扰的查找表,能够在单次筛选中对跨药物治疗类别的化合物进行高通量表征。所确定的代谢变化揭示了药物以前未知的作用,扩展了它们的作用模式注释和潜在治疗应用。我们证实了基于代谢组学对四种新型糖皮质激素受体激动剂、两种非常规3-羟基-3-甲基戊二酰辅酶A(HMGCR)抑制剂和两种二氢乳清酸脱氢酶(DHODH)抑制剂的预测。此外,我们证明代谢组分析补充了其他表型和分子分析技术,为提高临床前药物发现的效率、规模和准确性提供了机会。