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◆ Research2026-01-01· Chemistry

Engineering a Gram-Negative Bactericidal Hydrogel: Cu <sub>x</sub> Te Nanozyme Functions as a Specific Killer by Hijacking LPS and Flagella Biosynthesis

Jianguo Niu, Yuhao Xue, Wenqi Wang, Wei Zhang, Min Wang, Jiaqi Qin, Dongliang Yang, Xianwen Wang

原始摘要(英文原文)· Original abstract
The treatment of gram-negative bacterial infections remains a formidable challenge due to their resilient outer membrane and adaptive evasion mechanisms. Herein, we present a multifunctional nanozyme hydrogel, copper telluride@cationic guar gum (Cu x Te@CG), which acts as a gram-negative-specific bactericidal platform. This hydrogel integrates the unique enzymatic and physical properties of urchin-like Cu x Te nanozymes with the biocompatible and adhesive cationic guar gum (CG) matrix. The Cu x Te@CG hydrogel exhibits synergistic oxidase- and glutathione peroxidase-like activities, catalyzing the generation of reactive oxygen species (ROS) while depleting bacterial glutathione, thereby inducing lethal oxidative stress. Crucially, transcriptome sequencing revealed that the platform specifically targets Pseudomonas aeruginosa by down-regulating key genes involved in lipopolysaccharide (LPS) biosynthesis and flagellar assembly, compromising their primary defense and motility structures. This targeted interference with LPS and flagella amplifies the ROS-mediated attack, leading to enhanced and specific killing of gram-negative pathogens ( Escherichia coli , P. aeruginosa , and Klebsiella pneumoniae ), effective biofilm disruption, and inhibition. In a P. aeruginosa -infected burn wound model, the Cu x Te@CG hydrogel markedly accelerated healing by eliminating bacteria, promoting angiogenesis, and modulating inflammation, all while demonstrating excellent biosafety. This work establishes the Cu x Te@CG hydrogel as a robust and targeted therapeutic strategy for combating stubborn gram-negative infections.
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Engineering a Gram-Negative Bactericidal Hydrogel: Cu <sub>x</sub> Te Nanozyme Functions as a Specific Killer by Hijacking LPS and Flagella Biosynthesis — 科研速览 Science Skim