Sillé Fenna, Hartung Thomas
Center for Alternatives to Animal Testing (CAAT), Department of Environmental Health Sciences, Johns Hopkins Bloomberg School of Public Health and Whiting School of Engineering, Johns Hopkins University, Baltimore, MD 21205, USA.
CAAT-Europe, University of Konstanz, Universitätsstraße 10, 78464 Konstanz, Germany.
Metabolites. 2024 Jan 31;14(2):98. doi: 10.3390/metabo14020098.
Metabolomics is emerging as a powerful systems biology approach for improving preclinical drug safety assessment. This review discusses current applications and future trends of metabolomics in toxicology and drug development. Metabolomics can elucidate adverse outcome pathways by detecting endogenous biochemical alterations underlying toxicity mechanisms. Furthermore, metabolomics enables better characterization of human environmental exposures and their influence on disease pathogenesis. Metabolomics approaches are being increasingly incorporated into toxicology studies and safety pharmacology evaluations to gain mechanistic insights and identify early biomarkers of toxicity. However, realizing the full potential of metabolomics in regulatory decision making requires a robust demonstration of reliability through quality assurance practices, reference materials, and interlaboratory studies. Overall, metabolomics shows great promise in strengthening the mechanistic understanding of toxicity, enhancing routine safety screening, and transforming exposure and risk assessment paradigms. Integration of metabolomics with computational, in vitro, and personalized medicine innovations will shape future applications in predictive toxicology.
代谢组学正作为一种强大的系统生物学方法,用于改进临床前药物安全性评估。本综述讨论了代谢组学在毒理学和药物开发中的当前应用及未来趋势。代谢组学可通过检测毒性机制背后的内源性生化改变来阐明不良结局途径。此外,代谢组学能够更好地表征人类环境暴露及其对疾病发病机制的影响。代谢组学方法正越来越多地被纳入毒理学研究和安全药理学评估中,以获得机制性见解并识别早期毒性生物标志物。然而,要在监管决策中充分发挥代谢组学的潜力,需要通过质量保证措施、参考物质和实验室间研究,有力地证明其可靠性。总体而言,代谢组学在加强对毒性的机制理解、增强常规安全性筛查以及转变暴露和风险评估范式方面显示出巨大潜力。将代谢组学与计算、体外和个性化医学创新相结合,将塑造预测毒理学的未来应用。