1 Department of Nutritional Sciences, The University of Texas at Austin, Austin, TX, USA.
2 Department of Pediatrics, Dell Medical School, The University of Texas at Austin, Austin, TX, USA.
SLAS Discov. 2019 Sep;24(8):817-828. doi: 10.1177/2472555219860446. Epub 2019 Jul 25.
Metabolomics is increasingly applied to investigate different individuals and time-dependent responses to environmental stimuli. Rapid data acquisition and improved detection limits of direct infusion mass spectrometry (DIMS) are paving the way for applications of metabolomics in preclinical screening, opening new opportunities in drug discovery and personalized medicine. Three-dimensional (3D) cell culture systems, which mimic the in vivo cell microenvironment, are well recognized as tissue and organ substitutes. Here, we investigated cell viability and induction of reactive oxygen species (ROS) in stromal cells cultured in various 3D systems as well as the standard monolayer culture to evaluate which system provides the most favorable growing conditions. The selected 3D system was then tested for use in 3D co-culture of leukemia and stromal cells for DIMS-based high-throughput/high-content metabolic drug screens. The NanobioMatrix-poly(ε-caprolactone) (NBM-PCL) scaffold resulted in the lowest ROS production, supported rapid cell proliferation, and was suitable for the 96- and 384-well plate formats. Doxorubicin treatment in leukemia co-cultured with stromal cells induced some unique metabolic responses that drastically differed from those observed in leukemia cells alone. The DIMS results also showed that the drug-induced metabolic modulations in both normal and cancer cells were weakened by co-culturing even at high treatment doses, thereby demonstrating the value of the 3D co-culture high-content metabolic drug screen. In conclusion, we optimized a high sample throughput method for 3D co-culture with a DIMS-based high-content metabolic drug screen and drug development.
代谢组学越来越多地被应用于研究不同个体和时间依赖性对环境刺激的反应。直接进样质谱(DIMS)的快速数据采集和检测限的提高,为代谢组学在临床前筛选中的应用铺平了道路,为药物发现和个性化医疗开辟了新的机会。三维(3D)细胞培养系统,模拟体内细胞微环境,被公认为组织和器官替代品。在这里,我们研究了在各种 3D 系统以及标准单层培养中培养的基质细胞的细胞活力和活性氧(ROS)的诱导,以评估哪种系统提供最有利的生长条件。然后,选择的 3D 系统被用于白血病和基质细胞的 3D 共培养,以进行基于 DIMS 的高通量/高内涵代谢药物筛选。NanobioMatrix-聚(ε-己内酯)(NBM-PCL)支架产生的 ROS 最少,支持快速细胞增殖,并且适合 96 孔和 384 孔板格式。阿霉素处理白血病与基质细胞共培养诱导了一些独特的代谢反应,与单独培养白血病细胞时观察到的反应明显不同。DIMS 结果还表明,即使在高治疗剂量下进行共培养,也会减弱药物诱导的正常和癌细胞的代谢调节,从而证明了 3D 共培养高内涵代谢药物筛选的价值。总之,我们优化了一种高通量的 3D 共培养方法,用于基于 DIMS 的高内涵代谢药物筛选和药物开发。