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Published on: May 12, 2020
A Novel Jumbo Phage PhiMa05 Inhibits Harmful Microcystis sp
Ampapan Naknaen1, Oramas Suttinun1,2, Komwit Surachat3,4
1Environmental Assessment and Technology for Hazardous Waste Management Research Center, Faculty of Environmental Management, Prince of Songkla University, Hat Yai, Thailand.
Abstract:
Microcystis poses a concern because of its potential contribution to eutrophication and production of microcystins (MCs). Phage treatment has been proposed as a novel biocontrol method for Microcystis. Here, we isolated a lytic cyanophage named PhiMa05 with high efficiency against MCs-producing Microcystis strains. Its burst size was large, with approximately 127 phage particles/infected cell, a short latent period (1 day), and high stability to broad salinity, pH and temperature ranges. The PhiMa05 structure was composed of an icosahedral capsid (100 nm) and tail (120 nm), suggesting that the PhiMa05 belongs to the Myoviridae family. PhiMa05 inhibited both planktonic and aggregated forms of Microcystis in a concentration-dependent manner. The lysis of Microcystis resulted in a significant reduction of total MCs compared to the uninfected cells. A genome analysis revealed that PhiMa05 is a double-stranded DNA virus with a 273,876 bp genome, considered a jumbo phage. Out of 254 predicted open reading frames (ORFs), only 54 ORFs were assigned as putative functional proteins. These putative proteins are associated with DNA metabolisms, structural proteins, host lysis and auxiliary metabolic genes (AMGs), while no lysogenic, toxin and antibiotic resistance genes were observed in the genome. The AMGs harbored in the phage genome are known to be involved in energy metabolism [photosynthesis and tricarboxylic acid cycle (TCA)] and nucleotide biosynthesis genes. Their functions suggested boosting and redirecting host metabolism during viral infection. Comparative genome analysis with other phages in the database indicated that PhiMa05 is unique. Our study highlights the characteristics and genome analysis of a novel jumbo phage, PhiMa05. PhiMa05 is a potential phage for controlling Microcystis bloom and minimizing MC occurrence.
Insights
A novel jumbo phage, PhiMa05, effectively controls Microcystis blooms and reduces harmful microcystins. This phage shows high stability and unique genetic features, offering a promising biocontrol strategy for eutrophication.
Area of Science:
- Environmental Microbiology
- Virology
- Biotechnology
Background:
- Microcystis blooms contribute to eutrophication and produce toxic microcystins (MCs).
- Phage therapy is an emerging biocontrol method for harmful algal blooms.
Purpose of the Study:
- To isolate and characterize a novel lytic cyanophage for controlling MCs-producing Microcystis.
- To analyze the genome of the isolated phage and assess its biocontrol potential.
Main Methods:
- Isolation and characterization of the lytic cyanophage PhiMa05.
- Assessment of phage stability across various environmental conditions (salinity, pH, temperature).
- Genome sequencing and analysis of PhiMa05, including identification of open reading frames (ORFs) and auxiliary metabolic genes (AMGs).
Main Results:
- PhiMa05 demonstrated high lytic efficiency against MCs-producing Microcystis strains with a large burst size and short latent period.
- The phage exhibited broad stability across a wide range of salinity, pH, and temperatures.
- Genome analysis revealed PhiMa05 as a unique jumbo phage with AMGs involved in host metabolism, but lacking lysogenic, toxin, or antibiotic resistance genes.
- PhiMa05 significantly reduced Microcystis cell counts and total MCs in a concentration-dependent manner.
Conclusions:
- PhiMa05 is a robust and unique jumbo phage with significant potential for biocontrol of Microcystis blooms.
- The phage's ability to lyse Microcystis and reduce microcystin production makes it a promising tool for managing eutrophication and water quality.
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