Zhang Wenting, Zeng Yuan, Jiao Meng, Ye Chanjuan, Li Yanrong, Liu Chuanguang, Wang Jihua
Guangdong Provincial Key Laboratory of Crops Genetics & Improvement, Crops Research Institute, Guangdong Academy of Agricultural Sciences, Guangzhou, China.
Guangdong Provincial Engineering & Technology Research Center for Conservation and Utilization of the Genuine Southern Medicinal Resources, Guangzhou, China.
Front Plant Sci. 2023 Jan 18;14:1073848. doi: 10.3389/fpls.2023.1073848. eCollection 2023.
Medicinal plants are natural sources to unravel novel bioactive compounds to satisfy human pharmacological potentials. The world's demand for herbal medicines is increasing year by year; however, large-scale production of medicinal plants and their derivatives is still limited. The rapid development of modern technology has stimulated multi-omics research in medicinal plants, leading to a series of breakthroughs on key genes, metabolites, enzymes involved in biosynthesis and regulation of active compounds. Here, we summarize the latest research progress on the molecular intricacy of medicinal plants, including the comparison of genomics to demonstrate variation and evolution among species, the application of transcriptomics, proteomics and metabolomics to explore dynamic changes of molecular compounds, and the utilization of potential resources for natural drug discovery. These multi-omics research provide the theoretical basis for environmental adaptation of medicinal plants and allow us to understand the chemical diversity and composition of bioactive compounds. Many medicinal herbs' phytochemical constituents and their potential health benefits are not fully explored. Given their large diversity and global distribution as well as the impacts of growth duration and environmental factors on bioactive phytochemicals in medicinal plants, it is crucial to emphasize the research needs of using multi-omics technologies to address basic and applied problems in medicinal plants to aid in developing new and improved medicinal plant resources and discovering novel medicinal ingredients.
药用植物是揭示新型生物活性化合物以满足人类药理潜力的天然来源。全球对草药的需求逐年增加;然而,药用植物及其衍生物的大规模生产仍然有限。现代技术的快速发展推动了药用植物的多组学研究,在参与活性化合物生物合成和调控的关键基因、代谢物、酶等方面取得了一系列突破。在此,我们总结了药用植物分子复杂性的最新研究进展,包括通过基因组学比较来展示物种间的变异和进化,应用转录组学、蛋白质组学和代谢组学来探索分子化合物的动态变化,以及利用潜在资源进行天然药物发现。这些多组学研究为药用植物的环境适应性提供了理论基础,使我们能够了解生物活性化合物的化学多样性和组成。许多药用植物的植物化学成分及其潜在的健康益处尚未得到充分探索。鉴于其种类繁多、全球分布广泛,以及生长周期和环境因素对药用植物中生物活性植物化学物质的影响,强调利用多组学技术解决药用植物基础和应用问题以助力开发新的和改良的药用植物资源以及发现新型药用成分的研究需求至关重要。