Jan Řehák, Maryna Tsinyk, P Dvorák, Tomáš Takáč
ABSTRACT Due to their strong oxidizing potential, rapid membrane permeability, and high reactivity, reactive oxygen species (ROS) play essential roles in plant development and stress responses. Superoxide (O 2 •‐ ) is a primary product of molecular oxygen reduction and a crucial source of hydrogen peroxide, representing a ROS species of substantial importance. Its detoxification is mediated by superoxide dismutases (SODs) and non‐enzymatic antioxidants such as ascorbate and tocopherol. The inherently unstable and dynamic nature of O 2 •‐ demands tight spatial and temporal control to preserve its signaling and developmental functions. The final O 2 •‐ level and its distribution result from the combinatorial effects of its production and scavenging, which is often mediated by phytohormones such as abscisic acid and auxin. The primary objective of this article is to elucidate the putative mechanisms underlying the coregulation of O 2 •‐ production and decomposition during plant development. We summarize current insights into the ABA and auxin‐mediated regulation of its production by NADPH oxidases and highlight the central role of SODs, enzymes responsible for O 2 •‐ detoxification, exploring also their key regulatory mechanisms. Using bioinformatics, we propose potential pathways coordinating O 2 •‐ production and scavenging. Mechanisms such as direct activation of SODs by ROS, transcriptional control, and protein‐protein interactions that respond to developmental signals are discussed.