Functional Phytochemistry, Graduate School of Agricultural Science, Kobe University, Nada, Japan.
Biol Pharm Bull. 2012;35(6):824-32. doi: 10.1248/bpb.35.824.
Cytochrome P450 monooxygenases (P450s) catalyze a wide variety of monooxygenation reactions in primary and secondary metabolism in plants. The share of P450 genes in each plant genome is estimated to be up to 1%. This implies that the diversification of P450 has made a significant contribution to the ability to acquire the emergence of new metabolic pathways during land plant evolution. The P450 families conserved universally in land plants contribute to their chemical defense mechanisms. Several P450s are involved in the biosynthesis and catabolism of plant hormones. Species-specific P450 families are essential for the biosynthetic pathways of phytochemicals such as terpenoids and alkaloids. Genome wide analysis of the gene clusters including P450 genes will provide a clue to defining the metabolic roles of orphan P450s. Metabolic engineering with plant P450s is an important technology for large-scale production of valuable phytochemicals such as medicines.
细胞色素 P450 单加氧酶(P450s)在植物的初级和次级代谢中催化各种单加氧反应。每个植物基因组中 P450 基因的份额估计高达 1%。这意味着 P450 的多样化为陆地植物进化过程中获得新代谢途径的出现做出了重大贡献。在陆地植物中普遍保守的 P450 家族有助于它们的化学防御机制。几种 P450 参与植物激素的生物合成和分解代谢。物种特异性 P450 家族对于萜类和生物碱等植物化学物质的生物合成途径是必不可少的。包括 P450 基因在内的基因簇的全基因组分析将为确定孤儿 P450 的代谢作用提供线索。利用植物 P450 进行代谢工程是大规模生产有价值的植物化学物质(如药物)的重要技术。