Flufenoxuron is extensively applied in agricultural pest control; however, its effects on plant physiological processes remain insufficiently understood. Hence, this study evaluated the effects of flufenoxuron on photosynthetic processes and stomatal regulation in barley. The findings indicated that flufenoxuron significantly reduced photosynthetic efficiency and gas-exchange capacity. Furthermore, flufenoxuron exposure markedly increased abscisic acid (ABA) in leaves but not in roots. Nonetheless, reactive oxygen species (ROS) generation and membrane lipid peroxidation were triggered by flufenoxuron. Concomitantly, defense responses were activated, including the upregulation of peroxidase activity and the accumulation of soluble sugars to mitigate osmotic imbalance. Correlation analysis revealed that stomatal conductance (Gs) showed significant negative correlations with ABA, H2O2 (hydrogen peroxide), and O2·− (superoxide anion) levels. Furthermore, flufenoxuron exposure altered the expression of genes associated with ABA biosynthesis and catabolism, accompanied by changes in the expression of genes related to ABA- and ROS-associated signaling. These findings suggest that ABA- and ROS-associated processes may be involved in stomatal regulation under flufenoxuron exposure. Overall, this study provides a conceptual and mechanistic basis for understanding the phytotoxicity of benzoylurea compounds.
Tropospheric ozone (O₃) and water deficit stress (WS) are major abiotic constraints on wheat growth, physiology, and yield. Elevated O₃ induces oxidative stress by generating reactive oxygen species (ROS), impairing photosynthesis and cellular integrity, while water deficit stress limits CO₂ uptake via stomatal closure...
This review synthesizes recent advances in elucidating the molecular and physiological mechanisms underlying drought tolerance in Vitis vinifera to provide an integrative conceptual framework to support sustainable viticulture in water-limited environments.
Flooding stress (FS) at the maize seedling stage disrupts energy metabolism and redox homeostasis, impairing photosynthesis and causing cellular damage. This study evaluated whether exogenous melatonin (MT) alleviates FS injury in maize and characterized physiological and molecular responses associated with this protec...
Jiu-Yang Mao, Shahid Ali, Yan Gu et al.· Plant physiology and biochem...· 0 citations
Stomatal closure is a key adaptive response that plants employ to mitigate oxidative stress, a process tightly regulated by hydrogen peroxide (H₂O₂) signaling in guard cells. Despite its importance, the molecular mechanisms controlling H₂O₂ homeostasis during stomatal regulation remain poorly understood. In this study,...
In this review, water deficit remains one of the major constraints on plant productivity under rising temperatures, increasing atmospheric aridity, and the growing frequency of extreme weather events. Photosynthesis responds to drought not simply as a consequence of reduced water availability, but as a systemic disturb...
N. Platovschii, N. Zdioruk, M. Caus· Scientific Study & Resea...· 0 citations
This study demonstrates that NpWRKY38 acts as a multi-pathway negative regulatory mechanism by interfering with ABA signal transduction, suppressing the SA pathway, down-regulating photosynthetic genes, and compromising chloroplast integrity, providing a potential target for drought tolerance breeding in sugarcane.
Shuang-Cai Li, Hai-Bi Li, Kai Zhu et al.· Plants· 0 citations
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