Design, Synthesis, and Bioevaluation of Substituted Phenyl Isoxazole Analogues as Herbicide Safeners

J Agric Food Chem. 2020 Sep 30;68(39):10550-10559. doi: 10.1021/acs.jafc.0c01867. Epub 2020 Sep 16.

Abstract

Herbicide safeners enhance herbicide detoxification in crops without affecting target weed sensitivity. To enhance crop tolerance to the toxicity-related stress caused by the herbicide acetochlor (ACT), a new class of substituted phenyl isoxazole derivatives was designed by an intermediate derivatization method as herbicide safeners. Microwave-assisted synthesis was used to prepare the phenyl isoxazole analogues, and all of the structures were confirmed via IR, 1H NMR, 13C NMR, and HRMS. Compound I-1 was further characterized by X-ray diffraction analysis. Bioassay results showed that most of the obtained compounds provided varying degrees of safening against ACT-induced injury by increasing the corn growth recovery, glutathione content, and glutathione S-transferase activity. In particular, compound I-20 showed excellent safener activity against ACT toxicity, comparable to that of the commercial safener benoxacor. Gaussian calculations have been performed and the results indicated that the nucleophilic ability of compound I-20 is higher than that of benoxacor, thus the activity is higher than that of benoxacor. These findings demonstrate that phenyl isoxazole derivatives possess great potential for protective management in cornfields.

Keywords: herbicide safener; intermediate derivatization method; microwave-assisted synthesis; phenyl isoxazole derivatives; safener activity assay.

MeSH terms

  • Drug Design
  • Herbicides / chemical synthesis*
  • Herbicides / chemistry
  • Herbicides / pharmacology
  • Isoxazoles / chemistry*
  • Isoxazoles / pharmacology
  • Oxazines / chemistry
  • Oxazines / pharmacology
  • Plant Weeds / drug effects
  • Plant Weeds / growth & development

Substances

  • Herbicides
  • Isoxazoles
  • Oxazines
  • benoxacor