Modern Research Center for Traditional Chinese Medicine, Shanxi University, Taiyuan, 030006, PR China.
Science and Technology Innovation Center, Guangzhou University of Chinese Medicine, Guangzhou 510405, PR China.
Food Funct. 2020 Sep 23;11(9):8202-8213. doi: 10.1039/d0fo01332c.
Caffeic acid is a phenolic compound widely synthesized by plants, which has shown health benefits for multiple aging-related diseases. The aim of this study was to investigate the life-extending effect of caffeic acid and its underlying mechanisms. The effects of caffeic acid on lifespan, climbing behavior, starvation resistance, and heat sensitivity of Drosophila melanogaster (D. melanogaster) were evaluated. 1H-NMR-based metabolomics and biochemical detection were performed to explore the potential mechanisms. The results demonstrated that supplementation with caffeic acid extended the lifespan, and improved climbing behavior and stress resistance in D. melanogaster. Additionally, continuous supplementation with caffeic acid caused the metabolic profile of 30-day D. melanogaster closer to that of 3-day D. melanogaster, among which 17 differential metabolites were significantly regulated by caffeic acid, involved in amino acid metabolism and mitochondrial metabolism. Furthermore, caffeic acid significantly prevented oxidative damage and improved mitochondrial function. Correlation analysis indicated that the differential metabolites regulated by caffeic acid were correlated with its antioxidant effect and mitochondrial improvement function. In conclusion, our data support that caffeic acid could extend lifespan in D. melanogaster through regulation of metabolic abnormality and improvement of mitochondrial function.
咖啡酸是一种广泛存在于植物中的酚类化合物,具有多种与衰老相关疾病的健康益处。本研究旨在探讨咖啡酸的延长寿命作用及其潜在机制。评估了咖啡酸对黑腹果蝇(Drosophila melanogaster)寿命、攀爬行为、抗饥饿和耐热性的影响。通过 1H-NMR 代谢组学和生化检测来探索潜在机制。结果表明,咖啡酸的补充延长了寿命,改善了 D. melanogaster 的攀爬行为和应激抗性。此外,连续补充咖啡酸使 30 天 D. melanogaster 的代谢谱更接近 3 天 D. melanogaster 的代谢谱,其中 17 种差异代谢物被咖啡酸显著调控,涉及氨基酸代谢和线粒体代谢。此外,咖啡酸显著防止氧化损伤并改善线粒体功能。相关性分析表明,咖啡酸调节的差异代谢物与其抗氧化作用和改善线粒体功能有关。总之,我们的数据支持咖啡酸通过调节代谢异常和改善线粒体功能来延长 D. melanogaster 的寿命。