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Updated: Jul 31, 2025

Understanding the Impact of Temperate Bacteriophages on Their Lysogens Through Transcriptomics
Published on: January 5, 2024
The Promise and Pitfalls of Prophages
Jody C McKerral1, Bhavya Papudeshi2, Laura K Inglis2
1College of Science and Engineering, Flinders University, Bedford Park, SA, 5042, Australia.
Abstract:
Phages dominate every ecosystem on the planet. While virulent phages sculpt the microbiome by killing their bacterial hosts, temperate phages provide unique growth advantages to their hosts through lysogenic conversion. Many prophages benefit their host, and prophages are responsible for genotypic and phenotypic differences that separate individual microbial strains. However, the microbes also endure a cost to maintain those phages: additional DNA to replicate and proteins to transcribe and translate. We have never quantified those benefits and costs. Here, we analysed over two and a half million prophages from over half a million bacterial genome assemblies. Analysis of the whole dataset and a representative subset of taxonomically diverse bacterial genomes demonstrated that the normalised prophage density was uniform across all bacterial genomes above 2 Mbp. We identified a constant carrying capacity of phage DNA per bacterial DNA. We estimated that each prophage provides cellular services equivalent to approximately 2.4 % of the cell's energy or 0.9 ATP per bp per hour. We demonstrate analytical, taxonomic, geographic, and temporal disparities in identifying prophages in bacterial genomes that provide novel targets for identifying new phages. We anticipate that the benefits bacteria accrue from the presence of prophages balance the energetics involved in supporting prophages. Furthermore, our data will provide a new framework for identifying phages in environmental datasets, diverse bacterial phyla, and from different locations.
Insights
Temperate phages, known as prophages, offer bacterial hosts growth advantages. This study quanties the energetic cost and benefit of prophages, finding a balanced energetic relationship.
Area of Science:
- Microbiology
- Genomics
- Bioenergetics
Background:
- Phages significantly influence microbial ecosystems, with temperate phages conferring benefits via lysogenic conversion.
- Prophages contribute to bacterial genotypic and phenotypic diversity but impose a metabolic cost on host cells.
- Quantifying the energetic balance of prophage-host interactions has been a long-standing challenge.
Approach:
- Analyzed over 2.5 million prophages from 500,000 bacterial genome assemblies.
- Investigated prophage density and carrying capacity across diverse bacterial genomes.
- Estimated the energetic cost of prophage maintenance in terms of cellular energy and ATP production.
Key Points:
- A uniform normalized prophage density was observed across bacterial genomes larger than 2 Mbp.
- A consistent carrying capacity for phage DNA relative to bacterial DNA was identified.
- Each prophage was estimated to consume approximately 2.4% of cellular energy (0.9 ATP/bp/hour).
Conclusions:
- The energetic benefits bacteria gain from prophages likely balance the costs of their maintenance.
- Disparities in prophage identification across taxonomic, geographic, and temporal datasets offer new avenues for phage discovery.
- This research provides a framework for identifying phages in diverse environmental and bacterial samples.
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