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Updated: Aug 25, 2025

Phage Phenomics: Physiological Approaches to Characterize Novel Viral Proteins
Published on: June 11, 2015
Marine viral particles reveal an expansive repertoire of phage-parasitizing mobile elements
John M Eppley1, Steven J Biller2, Elaine Luo1
1Daniel K. Inouye Center for Microbial Oceanography: Research and Education, University of Hawaii, Honolulu, HI 96822.
Abstract:
Phage satellites are mobile genetic elements that propagate by parasitizing bacteriophage replication. We report here the discovery of abundant and diverse phage satellites that were packaged as concatemeric repeats within naturally occurring bacteriophage particles in seawater. These same phage-parasitizing mobile elements were found integrated in the genomes of dominant co-occurring bacterioplankton species. Like known phage satellites, many marine phage satellites encoded genes for integration, DNA replication, phage interference, and capsid assembly. Many also contained distinctive gene suites indicative of unique virus hijacking, phage immunity, and mobilization mechanisms. Marine phage satellite sequences were widespread in local and global oceanic virioplankton populations, reflecting their ubiquity, abundance, and temporal persistence in marine planktonic communities worldwide. Their gene content and putative life cycles suggest they may impact host-cell phage immunity and defense, lateral gene transfer, bacteriophage-induced cell mortality and cellular host and virus productivity. Given that marine phage satellites cannot be distinguished from bona fide viral particles via commonly used microscopic techniques, their predicted numbers (∼3.2 × 1026 in the ocean) may influence current estimates of virus densities, production, and virus-induced mortality. In total, the data suggest that marine phage satellites have potential to significantly impact the ecology and evolution of bacteria and their viruses throughout the oceans. We predict that any habitat that harbors bacteriophage will also harbor similar phage satellites, making them a ubiquitous feature of most microbiomes on Earth.
Insights
Newly discovered marine phage satellites are abundant mobile genetic elements that parasitize bacteriophages. These elements are widespread in oceans and impact microbial ecology and virus evolution.
Area of Science:
- Marine microbiology
- Virology
- Genetics
Background:
- Phage satellites are mobile genetic elements that rely on bacteriophage replication for propagation.
- Their presence and ecological roles in marine environments are not well understood.
Purpose of the Study:
- To report the discovery and characterization of abundant and diverse phage satellites in marine environments.
- To investigate the genetic makeup, distribution, and potential ecological impact of these marine phage satellites.
Main Methods:
- Analysis of concatemeric repeats within naturally occurring bacteriophage particles from seawater.
- Genomic sequencing and comparative analysis of identified phage satellite elements.
- Bioinformatic assessment of marine phage satellite distribution in global oceanic viromes.
Main Results:
- Discovery of abundant, diverse phage satellites packaged within bacteriophage particles and integrated into bacterioplankton genomes.
- Identification of genes related to integration, replication, phage interference, and unique virus hijacking mechanisms.
- Widespread distribution and temporal persistence of marine phage satellites in global oceanic vioplankton.
Conclusions:
- Marine phage satellites are ubiquitous and abundant, potentially influencing host immunity, lateral gene transfer, and microbial productivity.
- Their numbers may necessitate revised estimates of marine virus densities and production.
- These elements significantly impact marine microbial ecology and the evolution of bacteria and viruses.
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