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Regulation of transcript levels of the Arabidopsis cytochrome P450 genes involved in brassinosteroid biosynthesis

机译:参与油菜素类固醇生物合成的拟南芥细胞色素P450基因转录水平的调控

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摘要

Cytochrome P450 enzymes of the closely related CYP90 and CYP85 families catalyze essential oxidative reactions in the biosynthesis of brassinosteroid (BR) hormones. Arabidopsis CYP90B1/DWF4 and CYP90A1/CPD are responsible for respective C-22 and C-23 hydroxylation of the steroid side chain and CYP85A1 catalyzes C-6 oxidation of 6-deoxo intermediates, whereas the functions of CYP90C1/ROT3, CYP90D1, and CYP85A2 are still unknown. Semiquantitative reverse transcriptase-polymerase chain reaction analyses show that transcript levels of CYP85 and CYP90 genes are down-regulated by brassinolide, the end product of the BR biosynthesis pathway. Feedback control of the CYP90C1, CYP90D1, and CYP85A2 genes by brassinolide suggests that the corresponding enzymes might also participate in BR synthesis. CYP85 and CYP90 mRNAs show strong and transient accumulation during the 1st week of seedling development, as well as characteristic organ-specific distribution. Transcripts of CYP90A1 and CYP85A2 are preferentially represented in shoots and CYP90C1, CYP90D1, and CYP85A1 mRNAs are more abundant in roots, whereas CYP90B1 is ubiquitously expressed. Remarkably, the spatial pattern of CYP90A1 expression is maintained in the BR-insensitive cbb2 mutant, indicating the independence of organ-specific and BR-dependent regulation. Quantitative gas chromatography-mass spectrometry analysis of endogenous BRs in shoots and roots of Arabidopsis, pea (Pisum sativum), and tomato (Lycopersicon esculentum) reveal similar partitioning patterns of BR intermediates in these species. Inverse correlation between CYP90A1/CPD transcript levels and the amounts of the CYP90A1 substrate 6-deoxocathasterone in shoots and roots suggests that transcriptional regulation plays an important role in controlling BR biosynthesis.
机译:CYP90和CYP85家族密切相关的细胞色素P450酶催化油菜素甾醇(BR)激素生物合成中的重要氧化反应。拟南芥CYP90B1 / DWF4和CYP90A1 / CPD分别负责类固醇侧链的C-22和C-23羟基化作用,CYP85A1催化6-deoxo中间体的C-6氧化,而CYP90C1 / ROT3,CYP90D1和CYP85A2的功能仍然未知。半定量逆转录酶-聚合酶链反应分析表明,CYP85和CYP90基因的转录水平被BR生物合成途径的终产物油菜素内酯下调。通过油菜素内酯对CYP90C1,CYP90D1和CYP85A2基因的反馈控制表明相应的酶也可能参与BR的合成。 CYP85和CYP90 mRNA在幼苗发育的第一周显示出强而短暂的积累,并具有特定的器官特异性分布。 CYP90A1和CYP85A2的转录本优先出现在芽中,而CYP90C1,CYP90D1和CYP85A1 mRNA在根中更丰富,而CYP90B1则普遍存在。值得注意的是,CYP90A1表达的空间模式在BR不敏感的cbb2突变体中得以维持,表明器官特异性和BR依赖性调节的独立性。拟南芥,豌豆(Pisum sativum)和番茄(Lycopersicon esculentum)的芽和根中内源BR的定量气相色谱-质谱分析揭示了这些物种中BR中间体的相似分配模式。 CYP90A1 / CPD转录水平与茎和根中CYP90A1底物6-脱氧卡蒽酮的含量呈负相关,表明转录调控在控制BR生物合成中起重要作用。

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