Related Experiment Video
Updated: Jul 18, 2025

Isolation and Genome Analysis of Single Virions using 'Single Virus Genomics'
Published on: May 26, 2013
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.
Abstract:
Soil Sinorhizobium phage AP-16-3, a strain phylogenetically close to Rhizobium phage 16-3, was isolated in a mountainous region of Dagestan, belonging to the origin of cultivated plants in the Caucasus, according to Vavilov N.I. The genome of phage AP-16-3 is 61 kbp in size and contains 62 ORFs, of which 42 ORFs have homologues in the genome of Rhizobium phage 16-3, which was studied in the 1960s-1980s. A search for Rhizobium phage 16-3-related sequences was performed in the genomes of modern strains of root nodule bacteria belonging to different species, genera, and families. A total of 43 prophages of interest were identified out of 437 prophages found in the genomes of 42 strains, of which 31 belonged to Sinorhizobium meliloti species. However, almost all of the mentioned prophages contained single ORFs, and only two prophages contained 51 and 39 ORFs homologous to phages related to 16-3. These prophages were detected in S. meliloti NV1.1.1 and Rh. leguminosarum OyaliB strains belonging to different genera; however, the similarity level of these two prophages did not exceed 14.7%. Analysis of the orphan genes in these prophages showed that they encoded predominantly virion structural elements, but also enzymes and an extensive group of hypothetical proteins belonging to the L, S, and E regions of viral genes of phage 16-3. The data obtained indicate that temperate phages related to 16-3 had high infectivity against nodule bacteria and participated in intragenomic recombination events involving other phages, and in horizontal gene transfer between rhizobia of different genera. According to the data obtained, it is assumed that the repetitive lysogenic cycle of temperate bacteriophages promotes the dissolution of the phage genetic material in the host bacterial genome, and radical updating of phage and host bacterial genomes takes place.
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.
Related Concept Videos
DNA Bacteriophages
Lysogenic Cycle of Bacteriophages
Lytic Cycle of Bacteriophages
CRISPR and crRNAs
The CRISPR-Cas system stores a copy of foreign DNA in the host genome and uses it to identify the foreign DNA upon reinfection. CRISPR-Cas has three different...
The Antiviral System of Bacteria and Archaea: CRISPR
Viral Replication: Lysogenic Cycle

