Croteau R, Venkatachalam K V
Arch Biochem Biophys. 1986 Sep;249(2):306-15. doi: 10.1016/0003-9861(86)90007-x.
Piperitenone is commonly considered to be the key intermediate in the conversion of (-)-isopiperitenone to (+)-pulegone in peppermint; however, [3H]piperitenone gave rise only to the inert metabolite (+)-piperitone when incubated with peppermint leaf discs. Under identical conditions, (-)-[3H]isopiperitenone was efficiently incorporated into (+)-pulegone, (-)-menthone, and (+)-isomenthone in leaf discs, and yielded an additional metabolite identified as (+)-cis-isopulegone; piperitenone was poorly labeled. Moreover, (+)-cis-[3H]isopulegone was rapidly converted to (+)-pulegone, (-)-menthone, and (+)-isomenthone in leaf discs, and the reduction of (+)-[3H]pulegone to (-)-menthone and (+)-isomenthone was similarly documented. Each step of the pathway was demonstrated in a crude soluble preparation from peppermint leaf epidermis and each of the relevant enzymes was partially purified in order to compare relative rates of catalysis. The results of these studies indicate that the endocyclic double bond of (-)-isopiperitenone is reduced to yield (+)-cis-isopulegone, which is isomerized to (+)-pulegone as the immediate precursor of (-)-menthone and (+)-isomenthone, and they rule out piperitenone as an intermediate of the pathway.
胡椒烯酮通常被认为是薄荷中(-)-异胡椒烯酮转化为(+)-长叶薄荷酮的关键中间体;然而,[3H]胡椒烯酮与薄荷叶圆盘一起孵育时,仅产生惰性代谢物(+)-胡椒酮。在相同条件下,(-)-[3H]异胡椒烯酮在叶圆盘中有效地掺入(+)-长叶薄荷酮、(-)-薄荷酮和(+)-异薄荷酮中,并产生另一种鉴定为(+)-顺式异长叶薄荷酮的代谢物;胡椒烯酮的标记率很低。此外,(+)-顺式-[3H]异长叶薄荷酮在叶圆盘中迅速转化为(+)-长叶薄荷酮、(-)-薄荷酮和(+)-异薄荷酮,并且(+)-[3H]长叶薄荷酮还原为(-)-薄荷酮和(+)-异薄荷酮的过程也得到了类似的记录。该途径的每一步都在薄荷叶表皮的粗可溶性制剂中得到了证实,并且对每种相关酶进行了部分纯化,以便比较相对催化速率。这些研究结果表明,(-)-异胡椒烯酮的内环双键被还原生成(+)-顺式异长叶薄荷酮,其异构化为(+)-长叶薄荷酮,作为(-)-薄荷酮和(+)-异薄荷酮的直接前体,并且排除了胡椒烯酮作为该途径的中间体。