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Pathogen-Specific Polymeric Antimicrobials with Significant Membrane Disruption and Enhanced Photodynamic Damage To
Fengfeng Xiao1,2, Bing Cao1,2, Congyu Wang1,2
1MOE Key Laboratory of Laser Life Science and Institute of Laser Life Science , South China Normal University , Guangzhou 510631 , China.
Abstract:
Highly pathogenic Gram-negative bacteria and their drug resistance are a severe public health threat with high mortality. Gram-negative bacteria are hard to kill due to the complex cell envelopes with low permeability and extra defense mechanisms. It is challenging to treat them with current strategies, mainly including antibiotics, peptides, polymers, and some hybrid materials, which still face the issue of drug resistance, limited antibacterial selectivity, and severe side effects. Together with precise bacteria targeting, synergistic therapeutic modalities, including physical membrane damage and photodynamic eradication, are promising to combat Gram-negative bacteria. Herein, pathogen-specific polymeric antimicrobials were formulated from amphiphilic block copolymers, poly(butyl methacrylate)- b-poly(2-(dimethylamino) ethyl methacrylate- co-eosin)- b-ubiquicidin, PBMA- b-P(DMAEMA- co-EoS)-UBI, in which pathogen-targeting peptide ubiquicidin (UBI) was tethered in the hydrophilic chain terminal, and Eosin-Y was copolymerized in the hydrophilic block. The micelles could selectively adhere to bacteria instead of mammalian cells, inserting into the bacteria membrane to induce physical membrane damage and out-diffusion of intracellular milieu. Furthermore, significant in situ generation of reactive oxygen species was observed upon light irradiation, achieving further photodynamic eradication. Broad-spectrum bacterial inhibition was demonstrated for the polymeric antimicrobials, especially highly opportunistic Gram-negative bacteria, such as Pseudomona aeruginosa ( P. aeruginosa) based on the synergy of physical destruction and photodynamic therapy, without detectable resistance. In vivo P. aeruginosa-infected knife injury model and burn model both proved good potency of bacteria eradication and promoted wound healing, which was comparable with commercial antibiotics, yet no risk of drug resistance. It is promising to hurdle the infection and resistance suffered from highly opportunistic bacteria.
Insights
New polymeric antimicrobials target Gram-negative bacteria using physical damage and photodynamic therapy. This dual approach shows broad-spectrum efficacy, even against resistant strains like Pseudomonas aeruginosa, promoting wound healing without inducing drug resistance.
Area of Science:
- Biomaterials Science
- Nanotechnology
- Antimicrobial Research
Background:
- Gram-negative bacteria pose a significant public health threat due to their complex cell envelopes and increasing drug resistance.
- Current treatments for Gram-negative infections are limited by resistance, poor selectivity, and side effects.
Purpose of the Study:
- To develop novel polymeric antimicrobials for effective Gram-negative bacteria eradication.
- To investigate synergistic therapeutic strategies combining physical membrane disruption and photodynamic therapy.
Main Methods:
- Formulation of amphiphilic block copolymers with pathogen-targeting peptide ubiquicidin (UBI) and Eosin-Y.
- Micelle formation for selective bacterial adhesion and membrane insertion.
- In situ generation of reactive oxygen species upon light irradiation.
Main Results:
- Polymeric antimicrobials selectively targeted and damaged Gram-negative bacteria membranes, causing intracellular leakage.
- Photodynamic therapy in combination with physical damage resulted in broad-spectrum bacterial inhibition, including Pseudomonas aeruginosa.
- No detectable drug resistance was observed, and in vivo studies showed effective wound healing.
Conclusions:
- The developed polymeric antimicrobials offer a promising strategy to combat Gram-negative bacterial infections and overcome drug resistance.
- Synergistic physical and photodynamic eradication is effective against opportunistic Gram-negative pathogens.
- This approach holds potential for treating infections where antibiotic resistance is a major concern.
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