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Author

Tereza Jedelská

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Open access Aug 2026

Nitrosative modifications modulate the activity of plant aminoaldehyde dehydrogenase.

Reactive nitrogen species (RNS) are signalling molecules triggering several defence responses during plant stress. The highest importance has nitric oxide (NO), involved in the post-translational modifications, including protein S-nitrosation of target cysteine residues. Aminoaldehyde dehydrogenases (AMADHs) catalyze the NAD(P)+-dependent oxidation of various ω-amino aldehydes to the corresponding amino acids. Here, we focused on the dynamic redox regulation of AMADH activity in pea (Pisum sativum). We used the reversible S-nitrosation approach and studied the effect of NO donors on the activity of two AMADHs. LC-MS/MS analysis combined with structural mapping revealed selective modification of spatially accessible cysteine residues, whereas the catalytic Cys294 was detected predominantly in the methylthionylated form, consistent with its largely reduced state under the applied experimental conditions. These findings suggest that S-nitrosation modulates PsAMADH activity in a structurally constrained manner without directly disrupting the catalytic core. Inhibition of AMADH activity in roots of different pea genotypes was accompanied by increased RNS/NO accumulation, suggesting that nitrosative modulation of PsAMADH activity represents an important component of redox regulation in vivo.

Tereza Jedelská, Jana Sekaninová, D. Kopečný et al. · 0 citations
Review Open access Aug 2026

Nitric oxide–centred signaling networks in plants: from growth to postharvest

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.

Michaela Sedlářová, Tereza Jedelská, Aleš Lebeda et al. · 0 citations

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