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◆ Cytology and Genetics2026-07-31· Mediator

Hydrogen Sulfide as a Multifunctional Mediator of Cellular Adaptive Responses in Plants under Abiotic Stress

Yu. Е. Kolupaev, A. I. Oboznyi, В. П. Коломацька, С. П. Бесчасный, N. P. Kovalenko, V.M. Pysarenko

一句话结论 · In one sentence

This review consolidates current knowledge on the biosynthesis and functional interactions of hydrogen sulfide (H2S) in plants, analyzing data concerning the PTMs of key proteins involved in orchestrating plant adaptation to environmental stressors. The review discusses the interplay between H2S and other signaling intermediates, such as calcium ions (Ca2+), reactive oxygen species (ROS), and nitric oxide (NO), particularly with regard to their shared capacity to modify target proteins. The review highlights the critical need to identify the full spectrum of cysteine persulfidation sites and to elucidate the role of H2S in modulating the antioxidant defense system, activating the synthesis of stress-related metabolites, and regulating stomatal dynamics.

原始摘要(英文原文)· Original abstract
Gaseous signaling molecules, originally identified in animal systems as gasotransmitters, are currently a focal point of intensive research in plant biology. In recent years, evidence for the stress-protective properties of hydrogen sulfide (H2S) has accumulated rapidly. However, the precise functional interactions between H2S-mediated posttranslational modifications (PTMs) and the signaling pathways governing specific adaptive responses remain insufficiently characterized. This review consolidates current knowledge on both the primary and minor pathways of H2S biosynthesis. The authors analyze data concerning the PTMs of key proteins (including antioxidant enzymes, ion channels, and signaling components, such as protein kinases) involved in orchestrating plant adaptation to environmental stressors. Furthermore, the interplay between H2S and other signaling intermediates, such as calcium ions (Ca2+), reactive oxygen species (ROS), and nitric oxide (NO), is discussed, particularly with regard to their shared capacity to modify target proteins. Special attention is given to the role of H2S in modulating the antioxidant defense system, activating the synthesis of stress-related metabolites, and regulating stomatal dynamics. Emerging data on H2S-induced PTMs of proteins that trigger shifts in ion homeostasis within guard cells are examined. Finally, the review highlights the critical need to identify the full spectrum of cysteine persulfidation sites and to elucidate the regulatory mechanisms of PTMs in specific proteins during stress adaptation. The importance of further deciphering the functional crosstalk between H2S and stress-related phytohormones is also emphasized.
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