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.

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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