Integrative physiological, critical plant endogenous hormones, and transcriptomic analyses reveal the difenoconazole stress response mechanism in wheat (Triticum aestivum L.)

Pestic Biochem Physiol. 2023 Dec:197:105688. doi: 10.1016/j.pestbp.2023.105688. Epub 2023 Nov 7.

Abstract

Difenoconazole (DFN) is widely utilized as a fungicide in wheat production. However, its accumulation in plant tissues has a profound impact on the physiological functions of wheat plants, thus severely threatening wheat growth and even jeopardizing human health. This study aims to comprehensively analyze the dynamic dissipation patterns of DFN, along with an investigation into the physiological, hormonal, and transcriptomic responses of wheat seedlings exposed to DFN. The results demonstrated that exposure of wheat roots to DFN (10 mg/kg in soil) led to a significant accumulation of DFN in wheat plants, with the DFN content in roots being notably higher than that in leaves. Accumulating DFN triggered an increase in reactive oxygen species content, malonaldehyde content, and antioxidant enzyme activities, while concurrently inhibiting photosynthesis. Transcriptome analysis further revealed that the number of differentially expressed genes was greater in roots compared with leaves under DFN stress. Key genes in roots and leaves that exhibited a positive response to DFN-induced stress were identified through weighted gene co-expression network analysis. Metabolic pathway analysis indicated that these key genes mainly encode proteins involved in glutathione metabolism, plant hormone signaling, amino acid metabolism, and detoxification/defense pathways. Further results indicated that abscisic acid and salicylic acid play vital roles in the detoxification of leaf and root DFN, respectively. In brief, the abovementioned findings contribute to a deeper understanding of the detrimental effects of DFN on wheat seedlings, while shedding light on the molecular mechanisms underlying the responses of wheat root and leaves to DFN exposure.

Keywords: Difenoconazole exposure; Pesticide; Physiological response; Phytotoxicity; Transcriptomics.

MeSH terms

  • Antioxidants / pharmacology
  • Gene Expression Profiling
  • Hormones / metabolism
  • Hormones / pharmacology
  • Humans
  • Plant Growth Regulators* / metabolism
  • Plant Growth Regulators* / pharmacology
  • Plant Roots / metabolism
  • Seedlings
  • Stress, Physiological / genetics
  • Triticum* / genetics
  • Triticum* / metabolism

Substances

  • Plant Growth Regulators
  • difenoconazole
  • Antioxidants
  • Hormones