Jia Xueyan, Li Qingqing, Xu Mengwei, Zhang Jie, Xu Delin
Department of Cell Biology, Zunyi Medical University, Zunyi, 563099, China.
Department of Medical Instrumental Analysis, Zunyi Medical University, Zunyi, 563099, China.
Heliyon. 2024 Jan 10;10(2):e24341. doi: 10.1016/j.heliyon.2024.e24341. eCollection 2024 Jan 30.
Militarine is the lead member of secondary metabolites found in multiple medicinal plants of the orchid family. It acts as not only an important inhibitor on plant growth, but also functions as the quality marker for medicinal materials. In addition, Militarine has been shown to possess remarkably medicinal value, with a definite potential for finding widespread adoption of treating various diseases, including lung injury, brain nerve injury, cognitive impairment, aging, tumors, inflammation, peptic ulcers, and more. Thus, it can serve as a material carrier for pharmacophore upon, so much so that it probes as natural source of lead compounds in the research and development of medication. The study reported herein makes an overview on the physicochemical properties and pharmacological mechanisms of Militarine compounds, summarizes the biogenic pathways of Militarine and organically integrates the biological characteristics of Militarine with multiple omics techniques. Besides, this review also constructs a regulatory system for the biological accumulation of Militarine around its precursor compounds, characteristic gene elements, key enzymes, important metabolic products, and critical steps and links. Exceptionally, emphasis on the biosynthesis of Militarine under both abiotic and biotic stress, as well as an elaboration of the signaling pathways and critical regulatory mechanisms that govern the metabolic flow of Militarine have been represented accordingly in this paper. These findings are expected to provide reference schemes and theoretical foundations for acquiring high-quality resources of Militarine and advancing its large-scale industrial production, drug development, and clinical applications to comprehensively elucidate the biosynthetic and metabolic pathways.
石斛碱是兰科多种药用植物中次生代谢产物的主要成分。它不仅是植物生长的重要抑制剂,也是药材的品质标志物。此外,石斛碱已被证明具有显著的药用价值,在治疗包括肺损伤、脑神经损伤、认知障碍、衰老、肿瘤、炎症、消化性溃疡等多种疾病方面具有广泛应用的潜力。因此,它可作为药效团的物质载体,在药物研发中作为铅化合物的天然来源进行探索。本文报道的研究对石斛碱类化合物的理化性质和药理机制进行了综述,总结了石斛碱的生物合成途径,并将石斛碱的生物学特性与多种组学技术有机整合。此外,本综述还围绕其前体化合物、特征基因元件、关键酶、重要代谢产物以及关键步骤和环节构建了石斛碱生物积累的调控体系。特别地,本文相应地阐述了非生物和生物胁迫下石斛碱的生物合成,以及控制石斛碱代谢流的信号通路和关键调控机制。这些研究结果有望为获取高质量的石斛碱资源、推进其大规模工业化生产、药物研发和临床应用提供参考方案和理论基础,以全面阐明其生物合成和代谢途径。