首页> 外文期刊>The Biochemical Journal >Triadimefon, a fungicidal triazole-type P450 inhibitor, induces brassinosteroid deficiency-like phenotypes in plants and binds to DWF4 protein in the brassinosteroid biosynthesis pathway
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Triadimefon, a fungicidal triazole-type P450 inhibitor, induces brassinosteroid deficiency-like phenotypes in plants and binds to DWF4 protein in the brassinosteroid biosynthesis pathway

机译:三唑酮,一种杀真菌的三唑型P450抑制剂,可诱导植物中油菜素类固醇缺乏症样表型,并与油菜素类固醇生物合成途径中的DWF4蛋白结合

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摘要

Triadimefon (Bayleton((R))), a widely used triazole-type fungicide, affects gibberellin (GA) biosynthesis and 14alpha-demethylase in sterol biosynthesis. The present study revealed that the phenotype of Arabidopsis treated with triadimefon resembled that of a brassinosteroid (BR)-biosynthesis mutant, and that the phenotype was rescued by brassinolide (BL), the most active BR, partly rescued by GA, and fully rescued by the co-application of BL and GA, suggesting that triadimefon affects both BR and GA biosynthesis. The target sites of triadimefon were investigated using a rescue experiment, feeding triadimefon-treated Arabidopsis BR-biosynthesis intermediates, and a binding assay to expressed DWF4 protein, which is reported to be involved in the BR-biosynthesis pathway. The binding assay indicated that the dissociation constant for triardimefon was in good agreement with the activity in an in planta assay. In the triadimefon-treated Arabidopsis cells, the CPD gene in the BR-biosynthesis pathway was up-regulated, probably due to feedback regulation caused by BR deficiency. These results strongly suggest that triadimefon inhibits the reaction catalysed by DWF4 protein and induces BR deficiency in plants. As triadimefon treatment has proved to be beneficial to plants, this result suggests that BR-biosynthesis inhibitors can be applied to crops.
机译:三唑酮(Bayleton(R)),一种广泛使用的三唑型杀菌剂,会影响赤霉素(GA)的生物合成和固醇生物合成中的14alpha-脱甲基酶。本研究表明,经三唑酮处理的拟南芥的表型类似于油菜素甾体(BR)-生物合成突变体的表型,该表型由活性最高的BR油菜素内酯(BL)挽救,部分由GA挽救,并由GA完全挽救。 BL和GA的共同应用,表明三唑酮同时影响BR和GA的生物合成。使用救援实验,饲喂经三唑酮处理过的拟南芥BR-生物合成中间体和对表达的DWF4蛋白的结合测定法研究了三唑酮的靶位点,据报道该DWF4蛋白参与了BR-生物合成途径。结合试验表明,敌百虫的解离常数与植物体内试验的活性高度一致。在三唑酮处理的拟南芥细胞中,BR生物合成途径中的CPD基因上调,可能是由于BR缺乏引起的反馈调节。这些结果强烈表明三唑酮抑制了由DWF4蛋白催化的反应并诱导了植物中BR的缺乏。由于三唑酮处理已被证明对植物有益,因此该结果表明BR生物合成抑制剂可用于农作物。

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