栽培温度对金线莲次生代谢产物的影响

        Research on the effects of cultivation temperature on secondary metabolites of Anoectochilus roxburghii

        • 摘要:
          目的 温度是调控金线莲(Anoectochilus roxburghii)次生代谢的重要环境因子,系统探究不同栽培温度对金线莲次生代谢物含量的影响,为优化人工栽培条件、提升药材品质提供科学依据。
          方法 以梅花山金线莲为材料,利用人工气候箱,设置4种温度(5℃、15℃、25℃、35℃)对金线莲进行处理7d,利用LC-MS/MS进行广靶代谢组学分析,结合多元统计方法,系统比较了脂质、糖类及其衍生物、类黄酮及有机杂环化合物、萜类物质、生物碱及其衍生物等次生代谢物的差异,并通过HPLC测定金线莲苷和斑叶兰苷的含量。
          结果 温度处理显著改变了金线莲的次生代谢物组成,糖类及其衍生物在低温(5℃、15℃)条件下显著积累,高温(35℃)下含量急剧下降至25℃处理的1.2%。类黄酮及有机杂环化合物在高温和低温条件下均显著增加,呈现胁迫诱导特征。萜类物质在低温下含量显著上升,高温下则明显下降,但其在次生代谢物组成比例中无变化;生物碱及其衍生物、脂质以及药用成分金线莲苷和斑叶兰苷则表现出最适温度积累模式,在25℃时含量达到峰值,其中斑叶兰苷和金线莲苷含量分别达103.2 mg/g和92.43 mg/g,高温或低温处理下均降低20%~30%。
          结论 温度是调控金线莲次生代谢物合成的关键环境因子,不同次生代谢物对温度的响应呈现多样化模式。25℃最有利于金线莲生长及生物碱、金线莲苷、斑叶兰苷等药用成分的积累;而类黄酮、有机杂环化合物等抗氧化成分可通过温度胁迫诱导富集。本研究为金线莲的精细化、目标导向型栽培管理提供了代谢组学依据。

           

          Abstract:
          Objective Temperature is a key environmental factor regulating secondary metabolism of Anoectochilus roxburghii. This study systematically investigated the effects of different cultivation temperatures on the content of secondary metabolites in A. roxburghii, providing a scientific basis for optimizing artificial cultivation conditions and improving the quality of medicinal materials.
          Method Using A. roxburghii from Meihuashan as the test material, plants were treated with four temperatures (5℃, 15℃, 25℃, 35℃) for 7 days in an artificial climate chamber. Untargeted metabolomic analysis was performed using LC-MS/MS, combined with multivariate statistical methods, to systematically compare the differences in secondary metabolites, including lipids, carbohydrates and their derivatives, flavonoids and organic heterocyclic compounds, terpenoids, alkaloids and their derivatives. The contents of goodyeroside A and kinsenoside were determined by HPLC.
          Result Temperature treatments significantly altered the composition of secondary metabolites in A. roxburghii. Carbohydrates and their derivatives accumulated significantly at low temperatures (5℃, 15℃), while their content dropped sharply to 1.2% of the 25℃ treatment group at high temperatures (35℃). Flavonoids and organic heterocyclic compounds significantly increased under both high and low temperatures, showing characteristics of stress-induced induction. Terpenoid substances significantly increased at low temperatures and decreased at high temperatures, but its proportion in the composition of secondary metabolites remained unchanged; while alkaloids and their derivatives, lipids, and the medicinal components kinsenoside and goodyeroside A showed an optimal temperature accumulation pattern, with peak levels at 25℃. Specifically, the contents of goodyeroside A and kinsenoside reached 103.2 mg/g and 92.43 mg/g respectively, at 25℃, and decreased by 20% to 30% under high or low temperature treatments.
          Conclusion Temperature is the key environmental factor regulating the synthesis of secondary metabolites in A. roxburghii. Different secondary metabolites respond to temperature in diverse ways. A temperature of 25℃ is most conducive to the growth of A. roxburghii and the accumulation of medicinal components such as alkaloids, goodyeroside A and kinsenoside, while antioxidant components such as flavonoids and organoheterocyclic compounds can be enriched through temperature stress induction. This study provides a metabolomic basis for the precise, goal-oriented cultivation management of A. roxburghii.

           

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