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Polymyxin B-Modified Fosfomycin Liposomes Target Gram-Negative Bacteria and Exert Synergistic Antibacterial Effect
Rundong Zhu1, Zenglin Yin1, Nan Liu2
1Pharmacy College, Bengbu Medical College, Bengbu 233030, China.
Abstract:
Bacterial infection has always been one of the most serious threats faced by humans. Bacterial targeting is a promising strategy to enhance treatment efficacy and reduce the emergence of drug resistance. However, the traditional antibiotic targeting efficiency is poor, and it is challenging to achieve therapeutic concentrations of both drugs simultaneously in the same tissue due to differences in drug metabolism. This study aims to construct bacteria-targeted liposomes to enhance antibiotic delivery. In this study, anionic liposomes were constructed using the thin-film dispersion method, and the cationic antimicrobial peptide polymyxin B (PMB) was adsorbed onto the liposome surface through anionic-cationic electrostatic interaction as a carrier for fosfomycin (FOS), enabling bacteria-targeted drug delivery. The targeted effect of polymyxin B liposomes (PMB-Lipo) on Acinetobacter baumannii was evaluated in vitro and in vivo. The bactericidal activity of polymyxin B adsorbed fosfomycin liposomes (PMB-FOS-Lipo) in vitro and in vivo was compared with PMB and FOS mixture solution (PMB-FOS-Solution), and the anti-infection and anti-inflammatory effects were assessed. We also explored the issue of PMB nephrotoxicity using a series of biochemical indicators in mice. In vitro and in vivo experiments showed that PMB-Lipo effectively targeted Acinetobacter baumannii. PMB-FOS-Lipo exhibited better therapeutic efficacy compared to free PMB and FOS. Finally, adsorbing polymyxin B onto the liposome surface significantly reduced its severe nephrotoxicity. PMB-Lipo can effectively target Acinetobacter baumannii, and the encapsulated fosfomycin in liposomes synergizes with polymyxin B, enhancing antibacterial efficacy and reducing adverse drug reactions. We believe this antibacterial strategy can provide new insights into bacteria-targeted treatment.
Insights
Researchers developed targeted liposomes using polymyxin B (PMB) to deliver fosfomycin (FOS) effectively against Acinetobacter baumannii. This strategy enhances antibacterial efficacy and significantly reduces PMB
Area of Science:
- Microbiology
- Nanotechnology
- Pharmacology
Background:
- Bacterial infections pose a significant global health threat, necessitating improved therapeutic strategies.
- Traditional antibiotic delivery faces challenges in efficacy and drug resistance, with poor targeting efficiency.
- Achieving simultaneous therapeutic drug concentrations in target tissues is difficult due to differing drug metabolism.
Purpose of the Study:
- To construct bacteria-targeted liposomes for enhanced antibiotic delivery and treatment efficacy.
- To develop polymyxin B (PMB)-adsorbed liposomes carrying fosfomycin (FOS) for targeted delivery to Acinetobacter baumannii.
- To evaluate the therapeutic efficacy, antibacterial activity, and safety profile of the novel drug delivery system.
Main Methods:
- Anionic liposomes were prepared using the thin-film dispersion method.
- Cationic polymyxin B (PMB) was adsorbed onto liposome surfaces via electrostatic interactions, encapsulating fosfomycin (FOS).
- In vitro and in vivo studies assessed PMB-liposome targeting, PMB-FOS-liposome efficacy, and PMB nephrotoxicity.
Main Results:
- PMB-liposomes demonstrated effective in vitro and in vivo targeting of Acinetobacter baumannii.
- PMB-FOS-liposomes exhibited superior therapeutic efficacy compared to a mixture of free PMB and FOS.
- Adsorption of PMB onto liposomes significantly reduced its associated nephrotoxicity in mice.
Conclusions:
- PMB-liposomes provide effective targeting of Acinetobacter baumannii.
- Encapsulated fosfomycin within PMB-liposomes demonstrates synergistic antibacterial activity and enhanced efficacy.
- This liposomal drug delivery approach reduces adverse drug reactions, offering a promising strategy for bacterial infections.

