Guangxi Key Laboratory of Medicinal Resources Protection and Genetic Improvement, Guangxi Engineering Research Center of TCM Resource Intelligent Creation, National Center for TCM Inheritance and Innovation, Guangxi Botanical Garden of Medicinal Plants, Nanning, 530023, China.
Key Laboratory of State Administration of Traditional Chinese Medicine for Production & Development of Cantonese Medicinal Materials/ Guangdong Engineering Research Center of Good Agricultural Practice & Comprehensive Development for Cantonese Medicinal Materials, School of Chinese Materia Medica, Guangdong Pharmaceutical University, Guangzhou, 510006, China.
Sci Rep. 2024 Oct 26;14(1):25527. doi: 10.1038/s41598-024-76575-8.
Magnesium (Mg) plays a pivotal role as an essential component of plant chlorophyll and functions as a critical coenzyme. However, research exploring the regulatory mechanisms of magnesium ions on the synthesis of secondary metabolites is still in its early stages. Sophora tonkinensis is a widely utilized medicinal plant in China, recognized for its diverse secondary metabolites with active properties. This study investigates variations in these ingredients in tissue-cultured seedlings under varying magnesium concentrations. Simultaneously, an omics data analysis was conducted on tissue-cultured seedlings subjected to treatments with magnesium and low magnesium. These comprehensive omics analyses aimed to elucidate the mechanisms through which magnesium influences active components, growth, and development. Magnesium exerts a pervasive influence on various metabolic pathways, forming an intricate network. Research findings indicate that magnesium impacts diverse metabolic processes, including the absorption of potassium and calcium, as well as photosynthetic activity. Consequently, these influences lead to discernible changes in the levels of pharmacologically active compounds and the growth and developmental status.This study is the first to employ a multi-omics data analysis in S. tonkinensis. This methodology allows us to uncover the overarching impact of metabolic networks on the levels of various active ingredients and specific phenotypes.
镁 (Mg) 作为植物叶绿素的必需成分和关键辅酶,起着至关重要的作用。然而,探索镁离子对次生代谢物合成的调控机制的研究仍处于早期阶段。苦参是中国广泛应用的药用植物,因其具有多种具有活性的次生代谢物而闻名。本研究探讨了不同镁浓度下组织培养苗中这些成分的变化。同时,对镁和低镁处理的组织培养苗进行了组学数据分析。这些全面的组学分析旨在阐明镁影响活性成分、生长和发育的机制。镁对各种代谢途径都有广泛的影响,形成了一个复杂的网络。研究结果表明,镁影响多种代谢过程,包括钾和钙的吸收以及光合作用。因此,这些影响导致药理活性化合物的水平以及生长和发育状态发生明显变化。本研究首次在苦参中采用多组学数据分析。这种方法使我们能够揭示代谢网络对各种活性成分水平和特定表型的总体影响。