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Published on: August 19, 2021
Characterization of Mu-Like Yersinia Phages Exhibiting Temperature Dependent Infection
Biao Meng1,2, Zhizhen Qi3, Xiang Li3
1Department of Epidemiology and Biostatistics, School of Public Health, Anhui Medical University, Hefei, China.
Abstract:
Yersinia pestis is the etiological agent of plague. Marmota himalayana of the Qinghai-Tibetan plateau is the primary host of flea-borne Y. pestis. This study is the report of isolation of Mu-like bacteriophages of Y. pestis from M. himalayana. The isolation and characterization of four Mu-like phages of Y. pestis were reported, which were named as vB_YpM_3, vB_YpM_5, vB_YpM_6, and vB_YpM_23 according to their morphology. Comparative genome analysis revealed that vB_YpM_3, vB_YpM_5, vB_YpM_6, and vB_YpM_23 are phylogenetically closest to Escherichia coli phages Mu, D108 and Shigella flexneri phage SfMu. The role of LPS core structure of Y. pestis in the phages' receptor was pinpointed. All the phages exhibit "temperature dependent infection," which is independent of the growth temperature of the host bacteria and dependent of the temperature of phage infection. The phages lyse the host bacteria at 37°C, but enter the lysogenic cycle and become prophages in the chromosome of the host bacteria at 26°C. IMPORTANCE Mu-like bacteriophages of Y. pestis were isolated from M. himalayana of the Qinghai-Tibetan plateau in China. These bacteriophages have a unique temperature dependent life cycle, follow a lytic cycle at the temperature of warm-blooded mammals (37°С), and enter the lysogenic cycle at the temperature of its flea-vector (26°С). A switch from the lysogenic to the lytic cycle occurred when lysogenic bacteria were incubated from lower temperature to higher temperature (initially incubating at 26°C and shifting to 37°C). It is speculated that the temperature dependent lifestyle of bacteriophages may affect the population dynamics and pathogenicity of Y. pestis.
Insights
Researchers isolated Yersinia pestis bacteriophages from Himalayan marmots. These phages exhibit a unique temperature-dependent life cycle, switching between lytic and lysogenic phases, potentially impacting plague dynamics.
Area of Science:
- Microbiology and Virology
- Bacteriophage Research
- Zoonotic Disease Epidemiology
Background:
- Yersinia pestis, the causative agent of plague, primarily infects fleas hosted by Marmota himalayana on the Qinghai-Tibetan plateau.
- Understanding the interaction between Y. pestis and its vectors/hosts is crucial for controlling plague transmission.
Purpose of the Study:
- To isolate and characterize Mu-like bacteriophages of Yersinia pestis from Marmota himalayana.
- To investigate the unique life cycle and potential ecological role of these bacteriophages.
Main Methods:
- Isolation and morphological characterization of four Mu-like Y. pestis bacteriophages (vB_YpM_3, vB_YpM_5, vB_YpM_6, vB_YpM_23).
- Comparative genome analysis to determine phylogenetic relationships.
- Experimental determination of phage infection characteristics at different temperatures (26°C and 37°C).
Main Results:
- Four Mu-like Y. pestis bacteriophages were successfully isolated and identified.
- Genome analysis revealed phylogenetic proximity to Escherichia coli and Shigella flexneri phages.
- A novel temperature-dependent infection cycle was observed: lytic at 37°C (mammalian body temperature) and lysogenic at 26°C (flea vector temperature).
Conclusions:
- The isolated bacteriophages possess a unique temperature-dependent life cycle, switching between lytic and lysogenic states.
- This temperature-dependent lifestyle may influence Y. pestis population dynamics and pathogenicity in its natural environment.
- Further research into these bacteriophages could offer insights into plague epidemiology and control strategies.
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