4.7 Article

Comprehensive evaluation of chiral pydiflumetofen from the perspective of reducing environmental risks

Journal

SCIENCE OF THE TOTAL ENVIRONMENT
Volume 826, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.scitotenv.2022.154033

Keywords

Pydiflumetofen enantiomers; Fungicidal activity; Toxicity; Enantioselective behaviors; Risk assessment

Funding

  1. Natural Science Foundation of Zhejiang Province [LQ21C140002]
  2. National Natural Science Foundation of China [22006137]
  3. Science Technology Project of Zhejiang Province [2020C02023]

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The spatial structures of chiral pesticide enantiomers can affect their activity, toxicity, and behavior. This study found that the chiral pesticide S-(+)-pydiflumetofen had much higher activity than the R-(-)-pydiflumetofen on various phytopathogens, and the coexistence of R-(-)-pydiflumetofen enhanced the toxicity of S-(+)-pydiflumetofen on zebrafish. Additionally, the degradation of R-(-)-pydiflumetofen in crops was opposite to that in soil. Therefore, developing enantiopure S-(+)-pydiflumetofen products may be an efficient and low-risk strategy.
The spatial structures of chiral pesticide enantiomers can affect their activity, toxicity and behavior, thereby altering exposure risk. Identifying enantiomer differences and developing high-efficiency green enantiopure pesticide is an important strategy for reducing the negative effects of pesticides. In this study, after confirming the absolute configuration of pydiflumetofen enantiomers, fungicidal activity evaluation indicated that the activity of S-(+)-pydiflumetofen was 81.3-421 times higher than R-(-)-pydiflumetofen on three kinds of phytopathogens that control Fusarium wilt (Fusarium spp.), Alternaria rot (Alternaria alternata) and Southern blight (Sclerotinia rolfsii), which might be caused by the stronger binding ability of S-(+)-pydiflumetofen with the active site of the target protein. The coexistence of R-(-)-pydiflumetofen would enhance the toxicity of S-(+)-pydiflumetofen on zebrafish through synergistic effect. Low-activity R-(-)-pydiflumetofen was preferentially dissipated in soybean, soybean plants, cabbage and celery, which was opposite in soil. The persistence of S-(+)-pydiflumetofen in crops and degradability in soil were advantageous for pesticide effects and environmental protection. Based on the maximum residue limit (MRL) and hazard quotient (HQ), the dietary risks were determined to be acceptable for all crops. Thus, developing enantiopure S-(+)pydiflumetofen products might be a high-efficiency and low-risk strategy, and more studies should be conducted in this aspect.

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