Aug 2026· Frontiers in Plant Science· Vol 17· 0 citations· 128 references
Medicine
TL;DR
A concept-driven synthesis positioning NO as a central integrator of plant signaling networks is provided, highlighting its role as a redox–hormonal hub coordinating interactions with reactive oxygen species, phytohormones, and phytohormones.
Abstract
Nitric oxide (NO) has emerged as a versatile signaling molecule that regulates plant development, stress responses, and redox homeostasis through interactions with reactive oxygen species (ROS), phytohormones, and other bioactive compounds. In horticulture, postharvest losses remain a major challenge due to ongoing metabolic activity associated with ripening and senescence. Increasing evidence identifies NO as a key regulator capable of mitigating these processes and extending shelf life. This Mini Review provides a concept-driven synthesis positioning NO as a central integrator of plant signaling networks. We highlight its role as a redox–hormonal hub coordinating interactions with ROS and phytohormones. Special emphasis is placed on the dual role of NO as both a signaling molecule and a modulator of nitro-oxidative stress during plant growth, fruit ripening, and postharvest physiology. We further discuss key molecular mechanisms underlying postharvest responses, together with current controversies related to NO biosynthesis, concentration-dependent effects, and practical application strategies.
Nitric oxide (NO) and hydrogen sulfide (H2S) have emerged as key gaseous signaling molecules in plants, playing central roles in regulating responses to a myriad of abiotic stresses. A major mechanism through which these molecules exert their effects is via post-translational modifications (PTMs) of proteins, including...
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Nitric oxide (•NO) is a central regulator of plant development and stress responses, but recent evidence shows that reactive nitrogen signaling involves more than •NO alone. Nitroxyl (HNO), the one-electron-reduced and protonated form of •NO, has emerged as a distinct signaling molecule in plants with unique chemical a...
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