AI Article Synopsis

  • PAAs are synthetic herbicides that show enantioselectivity in their effects, but the mechanisms behind this selectivity are not well-understood.
  • The study focused on two model PAAs, dichlorprop and mecoprop, and found that the R enantiomer binds more effectively to the TIR1-IAA7 protein and is absorbed and translocated better in the plant Arabidopsis thaliana compared to the S enantiomer.
  • Understanding these mechanisms is important for developing environmentally friendly herbicides, potentially leading to more effective plant management practices.

Article Abstract

Phenoxyalkanoic acids (PAAs), synthetic indole-3-acetic acid (IAA) auxin mimics, are widely used as herbicides. Many PAAs are chiral molecules and show strong enantioselectivity in their herbicidal activity; however, there is a lack of understanding of mechanisms driving enantioselectivity. This study aimed to obtain a mechanistic understanding of PAA enantioselectivity using dichlorprop and mecoprop as model PAA compounds. Molecular docking, in vitro H-IAA binding assay, and surface plasmon resonance analysis showed that the R enantiomer was preferentially combined with TIR1-IAA7 (Transport Inhibitor Response1- Auxin-Responsive Protein IAA7) than the S enantiomer. In vivo tracking using C-PAAs showed a greater absorption of the R enantiomer by Arabidopsis thaliana, and further comparatively enhanced translocation of the R enantiomer to the nucleus where the auxin co-receptor is located. These observations imply that TIR1-IAA7 is a prior target for DCPP and MCPP, and that PAA enantioselectivity occurs because the R enantiomer has a stronger binding affinity for TIR1-IAA7 as well as a greater plant absorption and translocation capability than the S enantiomer. The improved understanding of PAA enantioselectivity is of great significance, as the knowledge may be used to design "green" molecules, such as R enantiomer enriched products, leading to improved plant management and environmental sustainability.

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http://dx.doi.org/10.1016/j.scitotenv.2021.147735DOI Listing

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Article Synopsis
  • PAAs are synthetic herbicides that show enantioselectivity in their effects, but the mechanisms behind this selectivity are not well-understood.
  • The study focused on two model PAAs, dichlorprop and mecoprop, and found that the R enantiomer binds more effectively to the TIR1-IAA7 protein and is absorbed and translocated better in the plant Arabidopsis thaliana compared to the S enantiomer.
  • Understanding these mechanisms is important for developing environmentally friendly herbicides, potentially leading to more effective plant management practices.
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Thin poly (acrylic acid) (PAA)-coated graphite felt (GF) is a promising electrode material for preparative organic electrosynthesis, because the electrode is not only stable and durable but also can be modified with various mediators and enzymes in the PAA layer. The TEMPO-modified GF electrode for electrocatalytic oxidation of several types of organic compounds were successfully constructed. The modified electrode had many advantageous properties compared with direct electrosynthesis or mediatory reaction synthesis which is still common as an electrochemical system.

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