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Anchoring mechanism-inspired discovery of a bacterial P450 gene conferring resistance to auxin herbicides

作者:Yuanyuan Jiang, Junjie Zhang, Z K Li, L Wang, Yi Guo, Yuxuan Li, X H Feng, Wen Gao, Yong Li, Zijia Li, Jieke Du, Guoqiang Zhang, Piqian Gong, Wenhan Fang, Xiang Gao, Ming‐Yi Bai, Frank Hollmann, M Zhang, He Huang, Binju Wang, Sudong Mo, Hui Li, Wei Peng, Shengying Li · 发表于:Nature Communications · 年份:2026 · DOI:10.1038/s41467-026-75811-1 · 研究领域:Weed Control and Herbicide Applications、Insect-Plant Interactions and Control、Allelopathy and phytotoxic interactions

Herbicides in combination with genetically modified herbicide-resistant crops have revolutionized modern weed management, increased crop yields, and facilitated farming practices. However, rapid evolution of herbicide-resistant weeds necessitates new resistance traits to sustain control efficacy. Here, we introduce a terminal carboxyl anchoring mechanism-inspired approach for precise discovery of P450 herbicide resistance genes, by which a number of bacterial P450 peroxygenases are predicted and confirmed to degrade auxin herbicides. Upon enzyme engineering, the optimal mutant P450BSβ-F46A can efficiently degrade diverse auxin herbicides and other carboxyl-containing herbicides. Mechanistic studies reveal that Compound I-mediated hydroxylation initiates the C‒O bond cleavage, followed by aromatic ring hydroxylation, thus forming a unique two-step degradation pathway. Transgenic rice expressing P450BSβ-F46A-CPR confers significant resistance to a recently commercialized auxin herbicide fluchloraminopyr. This work demonstrates the potential of the mechanism-driven strategy in directed discovery of broad-spectrum resistance genes for herbicide-resistant crop engineering. The rapid evolution of herbicide-resistant weeds necessitates new resistance traits to sustain control efficacy. Here the authors discover and engineer a bacterial P450 peroxygenase that degrades auxin herbicides, and create a transgenic rice resistant to a commercialized auxin herbicide.