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Depolymerase as a potent adjunct to polymyxin for targeting KL160 pandrug-resistant Acinetobacter baumannii in a
Bai-Ling Zhang1, Hui Li1, Wei-Xiao Wang2,3
1Department of Blood Transfusion, The Second Affiliated Hospital of Nanchang University, Nanchang 330006, China.
Objectives:
Acinetobacter baumannii bacteremia caused by pandrug-resistant strains poses a major challenge in intensive care units, necessitating novel therapeutic approaches. Phage-derived depolymerases offer a promising adjunct to conventional antibiotics. However, studies on A. baumannii phage depolymerases have been limited to non-mammalian models. This study investigates the therapeutic efficacy, safety, and potential mechanisms of action of DPO-HL, both as a monotherapy and in combination with polymyxin B, in a murine model of A. baumannii bacteremia.
Methods:
DPO-HL was expressed and purified via Ni-NTA affinity chromatography. Its bactericidal activity was assessed through dynamic killing and biofilm disruption assays. Interaction with human plasma was examined to determine its impact on plasma's bactericidal activity. Synergy with polymyxin B was evaluated by MIC reduction. Safety was assessed via cytotoxicity, haemolysis, and acute toxicity tests. A mouse bacteremia model was established to evaluate therapeutic efficacy via intraperitoneal and intravenous administration.
Results:
DPO-HL, targeting KL160 capsular polysaccharide, exhibited stability in plasma and enhanced plasma's bactericidal effect. It showed strong synergy with polymyxin B, reducing its MIC by 16-fold, and efficiently eradicated mature biofilms. DPO-HL alone reduced bacterial load and endotoxin levels but rescued only 30% of bacteremia mice. Combination therapy (1.45 mg/kg DPO-HL + 0.5 mg/kg polymyxin B) significantly reduced endotoxin levels and achieved 100% survival, regardless of administration route.
Conclusions:
This study identifies a KL160-targeting depolymerase and demonstrates its potent synergy with polymyxin B in treating A. baumannii bacteremia, supporting its potential for clinical application.
Insights
Phage depolymerase DPO-HL combined with polymyxin B shows promise for treating pandrug-resistant Acinetobacter baumannii bacteremia. This combination therapy achieved 100% survival in a murine model, offering a potential new treatment strategy.
Area of Science:
- Microbiology
- Biochemistry
- Pharmacology
Background:
- Pandrug-resistant Acinetobacter baumannii bacteremia is a critical challenge in intensive care units.
- Phage-derived depolymerases are emerging as potential adjuncts to conventional antibiotics.
- Previous studies on A. baumannii depolymerases were limited to non-mammalian models.
Purpose of the Study:
- To investigate the therapeutic efficacy and safety of DPO-HL, a phage depolymerase targeting KL160 capsular polysaccharide.
- To evaluate DPO-HL as a monotherapy and in combination with polymyxin B.
- To explore the mechanisms of action in a murine model of A. baumannii bacteremia.
Main Methods:
- DPO-HL purification and characterization.
- In vitro assays for bactericidal activity, biofilm disruption, and plasma interaction.
- Synergy testing with polymyxin B using MIC reduction.
- In vivo efficacy and safety assessment in a murine bacteremia model.
Main Results:
- DPO-HL demonstrated stability in human plasma and enhanced its bactericidal activity.
- Significant synergy was observed between DPO-HL and polymyxin B, reducing polymyxin B's MIC by 16-fold.
- Combination therapy resulted in 100% survival in mice with A. baumannii bacteremia, irrespective of administration route.
Conclusions:
- DPO-HL is an effective KL160-targeting depolymerase with potent synergistic activity with polymyxin B.
- The combination therapy offers a promising strategy for treating A. baumannii bacteremia.
- Further clinical investigation of this phage depolymerase-antibiotic combination is warranted.
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