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Review Open access Jul 2026

Reactive oxygen species in plants: spatiotemporal organization, redox signaling, and stress adaptation

Reactive oxygen species act as source-specific signals whose timing, buffering, and network interactions regulate plant development, defense, stress acclimation, and crop resilience. Reactive oxygen species (ROS) serve as key regulators of plant biology, functioning not only as harmful oxidants produced during aerobic metabolism but also as precisely controlled signaling molecules that coordinate growth, development, defense, and environmental adaptation. Recent advances in plant redox biology reveal that the biological effects of ROS depend more on their chemical nature, subcellular source, spatiotemporal dynamics, and integration with broader signaling networks than on their overall accumulation. In plants, chloroplasts, mitochondria, peroxisomes, the apoplast, and plasma membrane-associated oxidases form interconnected ROS-producing hubs, whose outputs are continually modulated by enzymatic and non-enzymatic antioxidant systems. Such dynamic buffering does not simply eliminate ROS, but preserves redox homeostasis while maintaining signaling competence. Additionally, ROS signals are interpreted through extensive cross-talk with calcium, phytohormones, nitric oxide (NO), mitogen-activated protein kinase cascades, and transcriptional regulators, enabling identical or similar ROS species to induce diverse developmental or stress responses depending on the context. Current understanding of compartment-specific ROS generation, scavenging, sensing, and signal propagation in plants is synthesized here, with particular emphasis on signaling specificity, redox thresholds, and intercompartmental communication. Attention is also directed toward the operation of ROS-regulatory networks during development and under abiotic and biotic stress, including increasingly complex multifactorial stress scenarios. In addition, recent advances in ROS imaging, biosensing, and quantitative analysis are evaluated for their contribution to resolving persistent questions in plant redox biology. By emphasizing spatial and temporal regulation rather than oxidative stress alone, the review provides an integrated framework for understanding how plants decode ROS signals and how such knowledge may be harnessed to improve crop resilience, productivity, and sustainability.

Sajid Ali, W. Zaman · 1 citation
Open access Aug 2026

Catechins as antibiofilm agents: molecular insights for virtual screening and in vitro biological evaluation

Bacterial Biofilms are of great concern because they are the main drivers of antimicrobial resistance. We investigated the potential of catechins against bacterial biofilms using advanced computational and in vitro models. The HPLC profiling of Camellia sinensis extract confirmed the presence of catechins. The ADMET and drug-likeness studies were specified to comply with the optimal values. Molecular docking on 2UV0 indicated a moderate interaction with targets, which was further confirmed by DFT analysis (Homo-Lumo). Root mean square fluctuations and normal mode analysis (NMA) further supported the chemical reactivity and possible protein–ligand stabilization profile of epicatechin gallate. Antimicrobial assay showed the highest inhibition by epigallocatechin against Pseudomonas aeruginosa (minimum inhibitory concentration 15.6 μg/mL), followed by Klebsiella pneumoniae (MIC 31.2 μg/ mL), Escherichia coli and Staphylococcus aureus (MIC 62.5 μg/mL). During in vitro assays, epicatechin gallate showed significant inhibition of bacterial growth (for up to 20 h) and biofilm formation (61.5% ± 2.3%), while the other compounds showed slight or negligible inhibition. The ability of catechins to reduce oxidative stress and its main components in C. sinensis was observed. It was thus concluded that catechin possesses significant antibacterial and antibiofilm potential that be phenotypic response.

Adnan Amin, Ahmad Khan, Haider Ali et al. · 0 citations
Review Open access Jul 2026

Beyond Permanent Genome Editing: Molecular Delivery Strategies for RNA Editing and Epigenome-Editing Therapeutics

Overall, delivery systems for reversible genetic medicines should be judged by tissue selectivity, functional editing, duration of action, reversibility after treatment withdrawal, safety, manufacturability, and clinical controllability.

W. Zaman, A. Ayaz · 0 citations