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Phage Phenomics: Physiological Approaches to Characterize Novel Viral Proteins
Published on: June 11, 2015
Genomic, Functional, and Evolutionary Insights into a Novel T7-like Phage B1 Infecting Multidrug-Resistant
Yun-Chan Tsai1, Soon-Hian Teh2, Philip Huang3
1Master Program in Biomedical Sciences, School of Medicine, Tzu Chi University, No. 701, Sec. 3, Zhongyang Road, Hualien 97004, Taiwan.
Abstract:
Multidrug-resistant (MDR) Enterobacter cloacae is a growing public health issue worldwide, highlighting the urgent need for alternative antimicrobial strategies. This study reports on a lytic phage, designated B1, isolated from sewage, which exhibits specificity and lytic efficiency against MDR E. cloacae. Morphological observation revealed that B1 possesses an icosahedral head (~54 nm) and a short tail (~13 nm). Phage B1 showed a narrow host range, demonstrated stability within a temperature range of 4-37 °C, tolerance to pH values between 5 and 11, and showed an excellent bacteriolytic capacity with a short latent period of less than 10 min and a burst size of approximately 150 PFU/initially infected cell, indicating a rapid lytic cycle and efficient replication capability. Whole-genome sequencing revealed that the phage genome consists of 40,163 base pairs of double-stranded DNA containing 52 open reading frames (ORFs) with a GC content of 52%. Comparative genome-wide analysis using VIRIDIC revealed that B1 shares 75% to 92% similarity with Escherichia phage IMM-002 (accession: NC_048071), Citrobacter phage SH4, and Cronobacter phage Dev2 (accession: NC_023558), but shares less than 70% similarity with other Enterobacter phages. According to ICTV criteria, B1 represents a new species within the same genus as T7-like phages belonging to Autographiviridae, subfamily Studiervirinae, genus Kayfunavirus. In addition, B1 lacks lysogeny-associated or virulence genes and exhibits potent lytic activity against multidrug-resistant E. cloacae, making it a promising candidate for phage therapy. These findings opened up our understanding of the diversity of T7-like phages and provided insights into their evolutionary adaptability and therapeutic potential.
Insights
A novel lytic phage, B1, effectively targets multidrug-resistant Enterobacter cloacae. This phage shows rapid replication and lacks harmful genes, presenting a promising candidate for phage therapy against resistant bacterial infections.
Area of Science:
- Microbiology
- Virology
- Genomics
Background:
- Multidrug-resistant (MDR) Enterobacter cloacae poses a significant global health threat.
- There is an urgent need for novel antimicrobial strategies to combat MDR pathogens.
Purpose of the Study:
- To isolate and characterize a lytic phage with activity against MDR Enterobacter cloacae.
- To evaluate the phage's potential for therapeutic applications.
Main Methods:
- Isolation and purification of lytic phage B1 from sewage.
- Morphological characterization using electron microscopy.
- Determination of phage stability under various environmental conditions (temperature, pH).
- Assessment of lytic efficiency, latent period, and burst size.
- Whole-genome sequencing and bioinformatic analysis (including comparative genomics).
- Phylogenetic analysis based on ICTV criteria.
Main Results:
- Phage B1, with an icosahedral head and short tail, demonstrated potent lytic activity against MDR E. cloacae.
- B1 exhibited stability across a wide pH range (5-11) and moderate temperatures (4-37 °C).
- The phage displayed a rapid lytic cycle (latent period <10 min) and high burst size (~150 PFU/cell).
- Genome sequencing revealed a 40,163 bp dsDNA genome with 52 ORFs.
- Phylogenetic analysis placed B1 as a new species within the Kayfunavirus genus (Autographiviridae family), related to T7-like phages.
- B1 lacks lysogeny and virulence genes.
Conclusions:
- Phage B1 is a novel T7-like phage with significant lytic efficacy against MDR Enterobacter cloacae.
- Its robust characteristics and absence of virulence factors make it a strong candidate for phage therapy.
- This study expands the understanding of T7-like phage diversity and therapeutic potential.
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