A Temperate Sinorhizobium Phage, AP-16-3, Closely Related to Phage 16-3: Mosaic Genome and Prophage Analysis

Alexandra P Kozlova1, Alla S Saksaganskaia1, Alexey M Afonin2

  • 1Laboratory of Genetics and Selection of Microorganisms, Federal State Budget Scientific Institution All-Russia Research Institute for Agricultural Microbiology (FSBSI ARRIAM), 196608 Saint Petersburg, Russia.

Viruses
|August 26, 2023
PubMed

Insights

A newly discovered soil Sinorhizobium phage, AP-16-3, shows close relation to Rhizobium phage 16-3. This research reveals temperate phages

Area of Science:

  • Microbiology
  • Virology
  • Genomics

Background:

  • The Caucasus region is a center of origin for cultivated plants, with associated root nodule bacteria.
  • Rhizobium phage 16-3 was extensively studied in the mid-20th century.
  • Soil phage AP-16-3, related to Rhizobium phage 16-3, was isolated from Dagestan.

Purpose of the Study:

  • To investigate the genomic relationship between soil phage AP-16-3 and Rhizobium phage 16-3.
  • To identify and analyze Rhizobium phage 16-3-related sequences in modern root nodule bacteria genomes.
  • To understand the role of temperate phages in bacterial genome evolution and horizontal gene transfer.

Main Methods:

  • Isolation and characterization of soil Sinorhizobium phage AP-16-3.
  • Whole-genome sequencing of phage AP-16-3.
  • Bioinformatic analysis of phage AP-16-3 genome and comparison with Rhizobium phage 16-3.
  • Database searching for homologous sequences in bacterial genomes.
  • Analysis of prophage gene content and homology.

Main Results:

  • Phage AP-16-3 genome is 61 kbp with 62 ORFs, 42 homologous to Rhizobium phage 16-3.
  • 43 prophages related to Rhizobium phage 16-3 were identified in 42 bacterial strains.
  • Only two prophages, found in Sinorhizobium meliloti and Rhizobium leguminosarum, showed significant homology (up to 14.7%) to Rhizobium phage 16-3.
  • Orphan genes in these prophages encode structural elements, enzymes, and hypothetical proteins.

Conclusions:

  • Temperate phages related to Rhizobium phage 16-3 exhibit high infectivity towards nodule bacteria.
  • These phages participate in intragenomic recombination and horizontal gene transfer among rhizobia.
  • Repetitive lysogenic cycles likely drive phage and host genome evolution and diversification.

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