College of Biosystems Engineering and Food Science, National-Local Joint Engineering Laboratory of Intelligent Food Technology and Equipment, Key Laboratory for Agro-Products Nutritional Evaluation of Ministry of Agriculture and Rural Affairs, Key Laboratory of Agro-Products Postharvest Handling of Ministry of Agriculture and Rural Affairs, Zhejiang Key Laboratory for Agro-Food Processing, Zhejiang International Scientific and Technological Cooperation Base of Health Food Manufacturing and Quality Control, Zhejiang University, Hangzhou, China.
Fuli Institute of Food Science, Zhejiang University, Hangzhou, China.
Med Res Rev. 2020 Nov;40(6):2605-2649. doi: 10.1002/med.21717. Epub 2020 Aug 10.
Phenylethanoid glycosides (PhGs) are generally water-soluble phenolic compounds that occur in many medicinal plants. Until June 2020, more than 572 PhGs have been isolated and identified. PhGs possess antibacterial, anticancer, antidiabetic, anti-inflammatory, antiobesity, antioxidant, antiviral, and neuroprotective properties. Despite these promising benefits, PhGs have failed to fulfill their therapeutic applications due to their poor bioavailability. The attempts to understand their metabolic pathways to improve their bioavailability are investigated. In this review article, we will first summarize the number of PhGs compounds which is not accurate in the literature. The latest information on the biological activities, structure-activity relationships, mechanisms, and especially the clinical applications of PhGs will be reviewed. The bioavailability of PhGs will be summarized and factors leading to the low bioavailability will be analyzed. Recent advances in methods such as bioenhancers and nanotechnology to improve the bioavailability of PhGs are also summarized. The existing scientific gaps of PhGs in knowledge are also discussed, highlighting research directions in the future.
苯乙醇苷类(PhGs)是广泛存在于多种药用植物中的水溶性酚类化合物。截至 2020 年 6 月,已分离鉴定出超过 572 种 PhGs。PhGs 具有抗菌、抗癌、抗糖尿病、抗炎、抗肥胖、抗氧化、抗病毒和神经保护作用。尽管具有这些有前景的益处,但由于其生物利用度差,PhGs 未能满足其治疗应用的需求。人们试图了解其代谢途径以提高其生物利用度。在这篇综述文章中,我们将首先总结文献中 PhGs 化合物数量不准确的问题。综述了 PhGs 的最新生物活性、构效关系、作用机制,特别是临床应用方面的信息。总结了 PhGs 的生物利用度,并分析了导致其生物利用度低的因素。还总结了生物增强剂和纳米技术等提高 PhGs 生物利用度的方法的最新进展。还讨论了 PhGs 在知识方面存在的科学空白,强调了未来的研究方向。