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Monoterpene Metabolism. Cloning Expression and Characterization of (−)-Isopiperitenol/(−)-Carveol Dehydrogenase of Peppermint and Spearmint

机译:单萜代谢。薄荷和留兰香中(-)-异胡椒醇/(-)-香芹醇脱氢酶的克隆表达及表征

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摘要

The essential oils of peppermint (Mentha x piperita) and spearmint (Mentha spicata) are distinguished by the oxygenation position on the p-menthane ring of the constitutive monoterpenes that is conferred by two regiospecific cytochrome P450 limonene-3- and limonene-6-hydroxylases. Following hydroxylation of limonene, an apparently similar dehydrogenase oxidizes (−)-trans-isopiperitenol to (−)-isopiperitenone in peppermint and (−)-trans-carveol to (−)-carvone in spearmint. Random sequencing of a peppermint oil gland secretory cell cDNA library revealed a large number of clones that specified redox-type enzymes, including dehydrogenases. Full-length dehydrogenase clones were screened by functional expression in Escherichia coli using a recently developed in situ assay. A single full-length acquisition encoding (>−)-trans-isopiperitenol dehydrogenase (ISPD) was isolated. The (−)-ISPD cDNA has an open reading frame of 795 bp that encodes a 265-residue enzyme with a calculated molecular mass of 27,191. Nondegenerate primers were designed based on the (−)-trans-ISPD cDNA sequence and employed to screen a spearmint oil gland secretory cell cDNA library from which a 5′-truncated cDNA encoding the spearmint homolog, (−)-trans-carveol-dehydrogenase, was isolated. Reverse transcription-PCR amplification and RACE were used to acquire the remaining 5′-sequence from RNA isolated from oil gland secretory cells of spearmint leaf. The full-length spearmint dehydrogenase shares >99% amino acid identity with its peppermint homolog and both dehydrogenases are capable of utilizing (−)-trans-isopiperitenol and (−)-trans-carveol. These isopiperitenol/carveol dehydrogenases are members of the short-chain dehydrogenase/reductase superfamily and are related to other plant short-chain dehydrogenases/reductases involved in secondary metabolism (lignan biosynthesis), stress responses, and phytosteroid biosynthesis, but they are quite dissimilar (approximately 13% identity) to the monoterpene reductases of mint involved in (−)-menthol biosynthesis. The isolation of the genes specifying redox enzymes of monoterpene biosynthesis in mint indicates that these genes arose from different ancestors and not by simple duplication and differentiation of a common progenitor, as might have been anticipated based on the common reaction chemistry and structural similarity of the substrate monoterpenes.
机译:薄荷(Mentha x piperita)和留兰香(Mentha spicata)的精油的特征在于组成性单萜的p-薄荷烷环上的氧合位置,这是由两个区域特异性细胞色素P450柠檬烯3-和柠檬烯6-羟化酶赋予的。柠檬烯的羟基化后,表面上相似的脱氢酶将薄荷中的(-)-反-异胡椒醇氧化为薄荷,将(-)-反-香芹酚氧化为留兰香中的(-)-香芹酮。薄荷油腺分泌细胞cDNA文库的随机测序显示了大量克隆,这些克隆指定了氧化还原型酶,包括脱氢酶。使用最近开发的原位测定,通过在大肠杆菌中的功能性表达来筛选全长脱氢酶克隆。单个全长采集编码(>-)-反式异胡椒醇脱氢酶(ISPD)被分离出来。 (-)-ISPD cDNA的开放阅读框为795 bp,编码265个残基酶,计算分子量为27,191。基于(-)-trans-ISPD cDNA序列设计非简并引物,并用于筛选留兰香油腺分泌细胞cDNA文库,从该文库中可提取5'截短的cDNA,以编码留兰香同源物(-)-反式-香芹醇-脱氢酶,已被隔离。使用逆转录PCR扩增和RACE从分离自留兰香叶油腺分泌细胞的RNA中获取剩余的5'序列。全长留兰香脱氢酶与其薄荷同源物具有> 99%的氨基酸同一性,并且两种脱氢酶均能够利用(-)-反-异胡椒醇和(-)-反-香芹酚。这些异胡椒醇/香芹酚脱氢酶是短链脱氢酶/还原酶超家族的成员,并且与参与次级代谢(木脂素生物合成),胁迫反应和植物甾体生物合成的其他植物短链脱氢酶/还原酶有关,但它们却非常相似(与(-)-薄荷醇生物合成中涉及的薄荷的单萜还原酶具有大约13%的同一性)。薄荷中单萜生物合成氧化还原酶基因的分离表明,这些基因起源于不同祖先,而不是通过共同祖细胞的简单复制和分化而产生的,这可能是基于共同反应化学和底物结构相似性所预期的单萜。

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