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Biosensor for Detection of Antibiotic Resistant Staphylococcus Bacteria
Published on: May 8, 2013
Dual-functional fluorescent probe Rhe-MU for hydrogen sulfide detection and its self-assembled hydrogel for MRSA
Jingran Zhang1, Liyan Zheng1, Qian Zhang1
1Hebei Provincial Key Laboratory of Inorganic Nonmetallic Materials, College of Materials Science and Engineering, North China University of Science and Technology, Tangshan 063210, Hebei, China.
None:
The excessive use of antibiotics has accelerated the rapid development and spread of drug-resistant bacteria, posing a severe threat to public health security. It is imperative to develop simple yet effective novel antimicrobial agents to replace antibiotic usage. Natural products typically possess a broad spectrum of pharmacological activities and are often associated with lower toxicity and fewer side effects. Consequently, the development of natural product-based antimicrobial agents presents a promising avenue for effectively replacing existing antibiotics. Building upon this foundation, leveraging the optical properties of natural product derivatives for dual-function detection of biomarkers is of significant importance. In this work, we propose a multi-component synergistic strategy involving the conjugation of the natural product rhein with the pharmacologically active molecule 4-methylumbelliferone through a chemical reaction, constructing the fluorescent probe Rhe-MU. This probe not only enabled the rapid fluorescence response and naked-eye detection of H₂S (manifested by a distinct solution color change from yellow to pink and a fluorescence shift from yellow to blue) but also facilitated the successful preparation of a bifunctional composite hydrogel (Rhe-MU-Gel) via non-covalent assembly with the intrinsically antimicrobial amino acid hydrogel Fmoc-F. Rhe-MU-Gel exhibited enhanced inhibitory activity against methicillin-resistant Staphylococcus aureus (MRSA) by integrating the synergistic antibacterial effects of rhein, 4-MU, and Fmoc-F. Concurrently, its superior biocompatibility overcame the inherent hydrophobicity limitations associated with traditional rhein derivatives, while retaining the capability for the visual detection of H₂S in vitro. This work successfully constructed a hydrogel system integrating dual "detection-antibacterial" functionality. The proposed natural product-based multi-component integration strategy establishes a novel design strategy for bifunctional fluorescent probes and next-generation antimicrobial agents. It demonstrates significant potential as a promising therapeutic alternative to conventional antibiotics for effectively combating drug-resistant bacterial infections and addressing the critical challenge of antimicrobial resistance.

