Transcriptionally linked simultaneous overexpression of P450 genes for broad-spectrum herbicide resistance

HANDLE オープンアクセス
  • 須田, 宏栄
    Graduate School of Agriculture, Kyoto University
  • 久保, 朋美
    Graduate School of Agriculture, Kyoto University
  • 義本, 裕介
    Graduate School of Agriculture, Kyoto University
  • 田中, 啓介
    NODAI Genome Research Center, Tokyo University of Agriculture
  • 田中, 聡
    Faculty of Regional Environment Science, Tokyo University of Agriculture
  • 内野, 彰
    Central Region Agricultural Research Center, National Agriculture and Food Research Organization
  • 東, 聡志
    Crop Research Center, Niigata Agricultural Research Institute
  • 服部, 誠
    Crop Research Center, Niigata Agricultural Research Institute
  • 山口, 拓也
    Biotechnology Research Center and Department of Biotechnology, Toyama Prefectural University
  • 宮下, 正弘
    Graduate School of Agriculture, Kyoto University
  • 冨永, 達
    Graduate School of Agriculture, Kyoto University
  • 岩上, 哲史
    Graduate School of Agriculture, Kyoto University

説明

Broad-spectrum herbicide resistance (BSHR), often linked to weeds with metabolism-based herbicide resistance, poses a threat to food production. Past studies have revealed that overexpression of catalytically promiscuous enzymes explains BSHR in some weeds; however, the mechanism of BSHR expression remains poorly understood. Here, we investigated the molecular basis of high-level resistance to diclofop-methyl in BSHR late watergrass (Echinochloa phyllopogon) found in the United States, which cannot be solely explained by the overexpression of promiscuous cytochrome P450 monooxygenases CYP81A12/21. The BSHR late watergrass line rapidly produced 2 distinct hydroxylated diclofop acids, only 1 of which was the major metabolite produced by CYP81A12/21. RNA-seq and subsequent reverse transcription quantitative PCR (RT-qPCR)-based segregation screening identified the transcriptionally linked overexpression of a gene, CYP709C69, with CYP81A12/21 in the BSHR line. The gene conferred diclofop-methyl resistance in plants and produced another hydroxylated diclofop acid in yeast (Saccharomyces cerevisiae). Unlike CYP81A12/21, CYP709C69 showed no other herbicide-metabolizing function except for a presumed clomazone-activating function. The overexpression of the 3 herbicide-metabolizing genes was also identified in another BSHR late watergrass in Japan, suggesting a convergence of BSHR evolution at the molecular level. Synteny analysis of the P450 genes implied that they are located at mutually independent loci, which supports the idea that a single trans-element regulates the 3 genes. We propose that transcriptionally linked simultaneous overexpression of herbicide-metabolizing genes enhances and broadens the metabolic resistance in weeds. The convergence of the complex mechanism in BSHR late watergrass from 2 countries suggests that BSHR evolved through co-opting a conserved gene regulatory system in late watergrass.

収録刊行物

  • Plant Physiology

    Plant Physiology 192 (4), 3017-3029, 2023-08

    Oxford University Press (OUP)

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詳細情報 詳細情報について

  • CRID
    1050015564874782848
  • ISSN
    15322548
    00320889
  • HANDLE
    2433/284587
  • 本文言語コード
    en
  • 資料種別
    journal article
  • データソース種別
    • IRDB

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