Liang Qu, Di Xu, Yajie Ren, Jianghui Ren, Luyao Huang, Lujing Hua, Haoqi Wu, Luya Wang
Postharvest fruit spoilage caused by microbial contamination and oxidative deterioration remains a major contributor to global food loss, necessitating multifunctional preservation strategies that are both effective and food-safe. Herein, a chitosan-based multifunctional hydrogel coating (CTS-ZnO&CA) integrating ZnO nanoparticles and chlorogenic acid (CA) extracted from honeysuckle was rationally constructed to simultaneously address microbial growth and oxidative instability in fruits. The CTS-ZnO&CA hydrogel exhibited a stable porous structure, good biocompatibility, and moderate antibacterial activity, achieving near-complete inhibition of MDR S. aureus and P. aeruginosa at low concentrations. Mechanistic investigations revealed that the antibacterial efficacy originates from a combined action involving bacterial membrane disruption, enhanced permeability and nucleic acid leakage, excessive intracellular ROS generation, oxidative stress imbalance, and effective biofilm destruction. Beyond antimicrobial activity, the coating also displayed strong antioxidant capacity, contributing to the mitigation of oxidative degradation during storage. Preservation performance was validated using fresh produce models, where CTS-ZnO&CA significantly reduced water loss and maintained the appearance quality of intact tomatoes, while effectively suppressing pathogen proliferation and delaying lesion expansion in wound-infected citrus fruits. This study highlights a hydrogel-coating strategy that integrates antimicrobial and antioxidant functions, providing a promising and practical approach for postharvest fruit preservation and anti-corrosion applications.