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Published on: February 23, 2014
A novel Saclayvirus Acinetobacter baumannii phage genomic analysis and effectiveness in preventing pneumonia
Shibin Li1, Bingdong Wei2, Le Xu1
1School of Bioengineering, Dalian University of Technology, Dalian, 116024, China.
Abstract:
Acinetobacter baumannii, which is resistant to multiple drugs, is an opportunistic pathogen responsible for severe nosocomial infections. With no antibiotics available, phages have obtained clinical attention. However, since immunocompromised patients are often susceptible to infection, the appropriate timing of administration is particularly important. During this research, we obtained a lytic phage vB_AbaM_P1 that specifically targets A. baumannii. We then assessed its potential as a prophylactic treatment for lung infections caused by clinical strains. The virus experiences a period of inactivity lasting 30 min and produces approximately 788 particles during an outbreak. Transmission electron microscopy shows that vB_AbaM_P1 was similar to the Saclayvirus. Based on the analysis of high-throughput sequencing and bioinformatics, vB_AbaM_P1 consists of 107537 bases with a G + C content of 37.68%. It contains a total of 177 open reading frames and 14 tRNAs. No antibiotic genes were detected. In vivo experiments, using a cyclophosphamide-induced neutrophil deficiency model, tested the protective effect of phage on neutrophil-deficient rats by prophylactic application of phage. The use of phages resulted in a decrease in rat mortality caused by A. baumannii and a reduction in the bacterial burden in the lungs. Histologic examination of lung tissue revealed a decrease in the presence of immune cells. The presence of phage vB_AbaM_P1 had a notable impact on preventing A. baumannii infection, as evidenced by the decrease in oxidative stress in lung tissue and cytokine levels in serum. Our research offers more robust evidence for the early utilization of bacteriophages to mitigate A. baumannii infection. KEY POINTS: •A novel Saclayvirus phage infecting A. baumannii was isolated from sewage. •The whole genome was determined, analyzed, and compared to other phages. •Assaying the effect of phage in preventing infection in neutrophil-deficient models.
Insights
Bacteriophages, specifically phage vB_AbaM_P1, show promise in preventing Acinetobacter baumannii lung infections in immunocompromised models. Early phage administration reduced mortality and bacterial load, offering a potential alternative to antibiotics.
Area of Science:
- Microbiology
- Virology
- Infectious Diseases
Background:
- Acinetobacter baumannii is a multidrug-resistant opportunistic pathogen causing severe nosocomial infections.
- The rise of antibiotic resistance necessitates alternative therapeutic strategies.
- Bacteriophages are gaining attention as potential treatments for bacterial infections.
Purpose of the Study:
- To isolate and characterize a lytic bacteriophage targeting Acinetobacter baumannii.
- To evaluate the prophylactic efficacy of the isolated phage against A. baumannii lung infections in a preclinical model.
Main Methods:
- Isolation and characterization of a novel lytic phage, vB_AbaM_P1, targeting A. baumannii.
- Whole genome sequencing and bioinformatic analysis of the phage.
- In vivo efficacy study using a cyclophosphamide-induced neutrophil-deficient rat model.
Main Results:
- Phage vB_AbaM_P1, a Saclay-like virus, was isolated and its genome sequenced (107,537 bp).
- Prophylactic administration of vB_AbaM_P1 significantly reduced mortality and bacterial burden in the lungs of infected rats.
- Phage treatment decreased lung immune cell infiltration, oxidative stress, and serum cytokine levels.
Conclusions:
- Phage vB_AbaM_P1 demonstrates significant prophylactic potential against Acinetobacter baumannii lung infections.
- Early phage intervention may be a viable strategy to mitigate severe infections caused by multidrug-resistant bacteria.
- This study provides evidence supporting the clinical application of bacteriophages in managing nosocomial infections.
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