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The Capsule Depolymerase Dpo48 Rescues Galleria mellonella and Mice From Acinetobacter baumannii Systemic Infections
Yannan Liu1,2, Sharon Shui Yee Leung3, Yatao Guo1
1Department of Respiratory and Critical Care Medicine, Peking University People's Hospital, Beijing, China.
Abstract:
The emergence of multidrug- and extensively drug-resistant Acinetobacter baumannii has made it difficult to treat and control infections caused by this bacterium. Thus, alternatives to conventional antibiotics for management of severe A. baumannii infections is urgently needed. In our previous study, we found that a capsule depolymerase Dpo48 could strip bacterial capsules, and the non-capsuled A. baumannii were significantly decreased in the presence of serum complement in vitro. Here, we further explored its potential as a therapeutic agent for controlling systemic infections caused by extensively drug-resistant A. baumannii. Prior to mammalian studies, the anti-virulence efficacy of Dpo48 was first tested in a Galleria mellonella infection model. Survival rate of Dpo48-pretreated bacteria or Dpo48 treatment group was significantly increased compared to the infective G. mellonella without treatment. Furthermore, the safety and therapeutic efficacy of Dpo48 to mice were evaluated. The mice treated with Dpo48 displayed normal serum levels of TBIL, AST, ALT, ALP, Cr, BUN and LDH, while no significant histopathology changes were observed in tissues of liver, spleen, lung, and kidney. Treatment with Dpo48 could rescue normal and immunocompromised mice from lethal peritoneal sepsis, with the bacterial counts in blood, liver, spleen, lung, and kidney significantly reduced by 1.4-3.3 log colony-forming units at 4 h posttreatment. Besides, the hemolysis and cytotoxicity assays showed that Dpo48 was non-homolytic to human red blood cells and non-toxic to human lung, liver and kidney cell lines. Overall, the present study demonstrated the promising potential of capsule depolymerases as therapeutic agents to prevent antibiotic-resistant A. baumannii infections.
Insights
A novel enzyme, capsule depolymerase Dpo48, effectively combats drug-resistant Acinetobacter baumannii infections. This enzyme strips bacterial capsules, making bacteria vulnerable to immune responses and showing promise as a new therapeutic agent.
Area of Science:
- Microbiology
- Infectious Diseases
- Drug Discovery
Background:
- Multidrug-resistant Acinetobacter baumannii poses a significant threat, necessitating novel treatment strategies.
- Conventional antibiotics are increasingly ineffective against extensively drug-resistant strains.
- Capsule depolymerase Dpo48 previously showed in vitro efficacy by degrading bacterial capsules.
Purpose of the Study:
- To evaluate Dpo48 as a therapeutic agent against systemic infections caused by extensively drug-resistant A. baumannii.
- To assess the safety and efficacy of Dpo48 in mammalian models.
Main Methods:
- Tested Dpo48 in a Galleria mellonella infection model.
- Evaluated Dpo48 safety and therapeutic efficacy in mice, including serum analysis and histopathology.
- Assessed bacterial load in blood and organs post-treatment.
- Performed hemolysis and cytotoxicity assays on human cell lines.
Main Results:
- Dpo48 significantly increased survival rates in G. mellonella models.
- Mice treated with Dpo48 showed normal physiological parameters and no significant tissue damage.
- Dpo48 treatment reduced bacterial counts in blood and organs of mice with lethal sepsis.
- Dpo48 demonstrated no hemolysis or cytotoxicity to human cells.
Conclusions:
- Capsule depolymerase Dpo48 shows significant anti-virulence efficacy against A. baumannii.
- Dpo48 is safe and therapeutically effective in preclinical models.
- Dpo48 holds promise as a novel therapeutic agent for antibiotic-resistant A. baumannii infections.
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