Consiglio per la Ricerca e la Sperimentazione in Agricoltura, Centro di Ricerca per le Produzioni Foraggere e Lattiero-Casearie, 26900 Lodi, Italy.
Plant Cell. 2011 Aug;23(8):3070-81. doi: 10.1105/tpc.111.087312. Epub 2011 Aug 5.
Saponins, a group of glycosidic compounds present in several plant species, have aglycone moieties that are formed using triterpenoid or steroidal skeletons. In spite of their importance as antimicrobial compounds and their possible benefits for human health, knowledge of the genetic control of saponin biosynthesis is still poorly understood. In the Medicago genus, the hemolytic activity of saponins is related to the nature of their aglycone moieties. We have identified a cytochrome P450 gene (CYP716A12) involved in saponin synthesis in Medicago truncatula using a combined genetic and biochemical approach. Genetic loss-of-function analysis and complementation studies showed that CYP716A12 is responsible for an early step in the saponin biosynthetic pathway. Mutants in CYP716A12 were unable to produce hemolytic saponins and only synthetized soyasaponins, and were thus named lacking hemolytic activity (lha). In vitro enzymatic activity assays indicate that CYP716A12 catalyzes the oxidation of β-amyrin and erythrodiol at the C-28 position, yielding oleanolic acid. Transcriptome changes in the lha mutant showed a modulation in the main steps of triterpenic saponin biosynthetic pathway: squalene cyclization, β-amyrin oxidation, and glycosylation. The analysis of CYP716A12 expression in planta is reported together with the sapogenin content in different tissues and stages. This article provides evidence for CYP716A12 being a key gene in hemolytic saponin biosynthesis.
三萜皂苷和甾体皂苷是糖苷类化合物,具有三萜或甾体骨架的苷元部分。尽管它们作为抗菌化合物具有重要意义,并且可能对人类健康有益,但对皂苷生物合成的遗传控制的了解仍然很差。在 Medicago 属中,皂苷的溶血活性与其苷元部分的性质有关。我们使用组合遗传和生化方法鉴定了参与 Medicago truncatula 皂苷合成的细胞色素 P450 基因 (CYP716A12)。遗传功能丧失分析和互补研究表明,CYP716A12 负责皂苷生物合成途径的早期步骤。CYP716A12 突变体不能产生溶血皂苷,只能合成大豆皂苷,因此被命名为缺乏溶血活性 (lha)。体外酶活性测定表明,CYP716A12 催化 β-香树脂醇和赤藓醇在 C-28 位的氧化,生成齐墩果酸。lha 突变体的转录组变化显示三萜皂苷生物合成途径的主要步骤发生了调制:鲨烯环化、β-香树脂醇氧化和糖基化。报告了 CYP716A12 在植物体内的表达分析以及不同组织和阶段的皂素含量。本文为 CYP716A12 是溶血皂苷生物合成的关键基因提供了证据。