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Updated: Jul 19, 2025

Phage Phenomics: Physiological Approaches to Characterize Novel Viral Proteins
Published on: June 11, 2015
Isolation, biological and whole genome characteristics of a Proteus mirabilis bacteriophage strain
Xirui Hao1,2, Xin Cen1,2, Min He1,2
1College of Animal and Veterinary Sciences, Southwest Minzu University, Chengdu, 610041, Sichuan, China.
Abstract:
Proteus mirabilis, a naturally resistant zoonotic bacterium belonging to the Enterobacteriaceae family, has exhibited an alarming increase in drug resistance. Consequently, there is an urgent need to explore alternative antimicrobial agents. Bacteriophages, viruses that selectively target bacteria, are abundant in the natural environment and have demonstrated potential as a promising alternative to antibiotics. In this study, we successfully isolated four strains of Proteus mirabilis phages from sewage obtained from a chicken farm in Sichuan, China. Subsequently, we characterized one of the most potent lytic phages, Q29, by examining its biological and genomic features. Comparative genomic analysis revealed the functional genes and phylogenetic evolution of Q29 phages. Our findings revealed that Proteus mirabilis bacteriophage Q29 possesses an icosahedral symmetrical head with a diameter of 95 nm and a tail length of 240 nm. Moreover, phage Q29 exhibited stability within a temperature range of 37 ℃ to 55 ℃ and under pH conditions ranging from 4 to 9. The optimal multiplicity of infection (MOI) for this phage was determined to be 0.001. Furthermore, the one-step growth curve results indicated an incubation period of approximately 15 min, an outbreak period of approximately 35 min, and an average cleavage quantity of approximately 60 plaque-forming units (PFU) per cell. The genome of phage Q29 was found to have a total length of 58,664 base pairs and encoded 335 open reading frames (ORFs) without carrying any antibiotic resistance genes. Additionally, genetic evolutionary analysis classified phage Q29 within the family Caudalidae and the genus Myotail. This study provides valuable research material for further development of Proteus mirabilis bacteriophage biologics as promising alternatives to antibiotics, particularly in light of the growing challenge of antibiotic resistance posed by this bacterium.
Insights
Researchers isolated and characterized Proteus mirabilis bacteriophage Q29 from chicken farm sewage. This phage shows potential as an alternative antimicrobial agent against drug-resistant Proteus mirabilis infections.
Area of Science:
- Microbiology
- Virology
- Genomics
Background:
- Proteus mirabilis exhibits increasing drug resistance, necessitating novel antimicrobial strategies.
- Bacteriophages offer a promising alternative to antibiotics due to their host specificity and abundance.
Purpose of the Study:
- To isolate and characterize bacteriophages targeting Proteus mirabilis.
- To evaluate the biological and genomic properties of a potent lytic phage, Q29, for potential therapeutic applications.
Main Methods:
- Isolation of bacteriophages from chicken farm sewage.
- Morphological characterization (electron microscopy) of phage Q29.
- Determination of phage stability (temperature, pH) and optimal multiplicity of infection (MOI).
- One-step growth curve analysis.
- Whole-genome sequencing and comparative genomic analysis.
Main Results:
- Isolation of four Proteus mirabilis phage strains, with Q29 identified as highly lytic.
- Phage Q29 has an icosahedral head (95 nm) and tail (240 nm), stable between 37-55°C and pH 4-9.
- Optimal MOI for Q29 is 0.001, with a short incubation (15 min) and outbreak (35 min) period.
- Q29 genome is 58,664 bp with 335 ORFs, lacking antibiotic resistance genes.
- Phylogenetic analysis places Q29 in the Caudalidae family, genus Myotail.
Conclusions:
- Proteus mirabilis bacteriophage Q29 is a viable candidate for developing phage-based therapies.
- Its specific biological and genomic characteristics support its potential as an alternative to conventional antibiotics.
- Further research into Q29 biologics can address the challenge of drug-resistant Proteus mirabilis infections.
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