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首页> 外文期刊>American Journal of Plant Sciences >Regio- and Substrate-Specific Oxidative Metabolism of Terpinolene by Cytochrome P450 Monooxygenases in Cupressus lusitanica Cultured Cells
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Regio- and Substrate-Specific Oxidative Metabolism of Terpinolene by Cytochrome P450 Monooxygenases in Cupressus lusitanica Cultured Cells

机译:柏柏培养细胞中细胞色素P450单加氧酶对萜品油烯的区域和底物特异性氧化代谢

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Many of monoterpenes produced in plants contribute to defenses against herbivores, insects and microorganisms. Among those compounds, β-thujaplicin formed in Cupressaceae plants has a unique conjugated seven-membered ring and some useful biological activities, e.g. fungicide, repellent, insecticide and so on. The biosynthesis pathway of β-thujaplicin has not yet been revealed; we have been trying to uncover it using Cupressus lusitanica cultured cells as a model. In our previous study, terpinolene was identified as a potential β-thujaplicin intermediate at the branching point to terpenoids. In this article, terpinolene metabolism in C. lusitanica cultured cells was investigated, and it was shown that the microsomal fraction from cells oxidized terpinolene into the hydroxylated compound, 5-isopropylidene-2-met-hylcyclohex-2-enol (IME). Then, IME was further oxidized by microsomal fraction to the epoxidized compound, 1,6-epoxy-4(8)-p-menthen-2-ol (EMO). These were the only two products detected from the microsomal reactions, respecttively. Moreover, microsomal reactions with monoterpenes other than terpinolene produced nothing detectable. These results show that the enzymes of these reactions had strict substrate specificity and regio-selectivity. Experiments on kinetics and with specific inhibitors confirmed that these reactions were caused by cytochrome P450 monooxygenases, respectively. These results support our hypothesis that terpinolene is a putative intermediate of β-thujaplicin biosynthesis and show that IME and EMO are also putative intermediates.
机译:植物中产生的许多单萜有助于防御食草动物,昆虫和微生物。在这些化合物中,在柏科植物中形成的β-thujaplicin具有独特的共轭七元环和一些有用的生物学活性,例如杀菌剂,驱避剂,杀虫剂等。 β-thujaplicin的生物合成途径尚未发现。我们一直在尝试使用柏木(Cupressus lusitanica)培养的细胞作为模型来发现它。在我们之前的研究中,萜品醇被认为是潜在的β-thujaplicin中间体,位于萜类化合物的分支点。在本文中,研究了C. lusitanica培养的细胞中萜品油烯的代谢,结果表明,细胞中的微粒体将萜品油烯氧化为羟基化化合物5-异亚丙基-2-甲基-hylcyclohex-2-enol(IME)。然后,将IME通过微粒体级分进一步氧化为环氧化化合物1,6-epoxy-4(8)-p-menthen-2-ol(EMO)。分别是从微粒体反应中检测到的两种产物。此外,与除萜品油烯以外的单萜的微粒体反应无法检测到。这些结果表明这些反应的酶具有严格的底物特异性和区域选择性。动力学和特定抑制剂的实验证实,这些反应分别是由细胞色素P450单加氧酶引起的。这些结果支持了我们的假设,即萜品油烯是β-thujaplicin生物合成的假定中间体,并表明IME和EMO也是假定的中间体。

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