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稗草对乙酰乳酸合成酶抑制剂的代谢抗性:CYP81Q32 的鉴定及其转录调控。

Metabolic resistance to acetolactate synthase inhibitors in Beckmannia syzigachne: identification of CYP81Q32 and its transcription regulation.

机构信息

College of Plant Protection, Hunan Agricultural University, Changsha, 410128, China.

Hunan Academy of Agricultural Sciences, Changsha, 410125, China.

出版信息

Plant J. 2023 Jul;115(2):317-334. doi: 10.1111/tpj.16227. Epub 2023 Apr 17.

Abstract

Frequent herbicide use selects for herbicide resistance in weeds. Cytochrome P450s are important detoxification enzymes responsible for herbicide resistance in plants. We identified and characterized a candidate P450 gene (BsCYP81Q32) from the problematic weed Beckmannia syzigachne to test whether it conferred metabolic resistance to the acetolactate synthase-inhibiting herbicides mesosulfuron-methyl, bispyribac-sodium, and pyriminobac-methyl. Transgenic rice overexpressing BsCYP81Q32 was resistant to the three herbicides. Equally, rice overexpressing the rice ortholog gene OsCYP81Q32 was more resistant to mesosulfuron-methyl. Conversely, an OsCYP81Q32 gene knockout generated using CRISPR/Cas9 enhanced mesosulfuron-methyl sensitivity in rice. Overexpression of the BsCYP81Q32 gene resulted in enhanced mesosulfuron-methyl metabolism in transgenic rice seedlings via O-demethylation. The major metabolite, demethylated mesosulfuron-methyl, was chemically synthesized and displayed reduced herbicidal effect in plants. Moreover, a transcription factor (BsTGAL6) was identified and shown to bind a key region in the BsCYP81Q32 promoter for gene activation. Inhibition of BsTGAL6 expression by salicylic acid treatment in B. syzigachne plants reduced BsCYP81Q32 expression and consequently changed the whole plant response to mesosulfuron-methyl. Sequence polymorphisms in an important region of the BsTGAL6 promoter may explain the higher expression of BsTGAL6 in resistant versus susceptible B. syzigachne plants. Collectively, the present study reveals the evolution of an herbicide-metabolizing and resistance-endowing P450 and its transcription regulation in an economically important weedy plant species.

摘要

频繁使用除草剂会导致杂草产生抗药性。细胞色素 P450 是植物产生抗药性的重要解毒酶。我们从有问题的杂草稗草中鉴定和表征了一个候选 P450 基因(BsCYP81Q32),以测试它是否赋予了代谢对乙酰乳酸合成酶抑制剂类除草剂甲磺隆、双吡嘧磺隆和吡嘧肟菌酯的抗性。过表达 BsCYP81Q32 的转基因水稻对这三种除草剂具有抗性。同样,过表达水稻同源基因 OsCYP81Q32 的水稻对甲磺隆的抗性也更强。相反,使用 CRISPR/Cas9 生成的 OsCYP81Q32 基因敲除增强了水稻中甲磺隆的敏感性。通过 O-脱甲基化,BsCYP81Q32 基因的过表达导致转基因水稻幼苗中甲磺隆的代谢增强。合成的主要代谢物脱甲基甲磺隆在植物中显示出降低的除草效果。此外,还鉴定并显示转录因子(BsTGAL6)结合了 BsCYP81Q32 启动子中的关键区域以激活基因。在稗草植物中用水杨酸处理抑制 BsTGAL6 的表达,降低了 BsCYP81Q32 的表达,从而改变了稗草对甲磺隆的整体反应。BsTGAL6 启动子中一个重要区域的序列多态性可能解释了抗性稗草植物中 BsTGAL6 表达更高的原因。总之,本研究揭示了一种经济上重要的杂草物种中具有代谢和抗性功能的 P450 及其转录调控的进化。

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