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Published on: August 12, 2019
Co-transfer of functionally interdependent genes contributes to genome mosaicism in lambdoid phages
Anne Kupczok1, Zachary M Bailey2, Dominik Refardt3
1Bioinformatics Group, Wageningen University & Research, Wageningen, Netherlands.
Abstract:
Lambdoid (or Lambda-like) phages are a group of related temperate phages that can infect Escherichia coli and other gut bacteria. A key characteristic of these phages is their mosaic genome structure, which served as the basis for the 'modular genome hypothesis'. Accordingly, lambdoid phages evolve by transferring genomic regions, each of which constitutes a functional unit. Nevertheless, it is unknown which genes are preferentially transferred together and what drives such co-transfer events. Here we aim to characterize genome modularity by studying co-transfer of genes among 95 distantly related lambdoid (pro-)phages. Based on gene content, we observed that the genomes cluster into 12 groups, which are characterized by a highly similar gene content within the groups and highly divergent gene content across groups. Highly similar proteins can occur in genomes of different groups, indicating that they have been transferred. About 26 % of homologous protein clusters in the four known operons (i.e. the early left, early right, immunity and late operon) engage in gene transfer, which affects all operons to a similar extent. We identified pairs of genes that are frequently co-transferred and observed that these pairs tend to be near one another on the genome. We find that frequently co-transferred genes are involved in related functions and highlight interesting examples involving structural proteins, the cI repressor and Cro regulator, proteins interacting with DNA, and membrane-interacting proteins. We conclude that epistatic effects, where the functioning of one protein depends on the presence of another, play an important role in the evolution of the modular structure of these genomes.
Insights
Lambdoid phages evolve through gene transfer, forming functional genomic modules. Frequently co-transferred genes are often near each other and share related functions, driven by epistatic effects.
Area of Science:
- Microbiology
- Genomics
- Evolutionary Biology
Background:
- Lambdoid phages, including temperate phages infecting Escherichia coli, possess mosaic genomes.
- The 'modular genome hypothesis' suggests these phages evolve via transfer of functional genomic regions.
- Understanding gene co-transfer and its drivers is crucial for elucidating phage evolution.
Purpose of the Study:
- To characterize genome modularity in lambdoid phages.
- To investigate which genes are preferentially transferred together and the factors influencing co-transfer.
- To analyze gene co-transfer patterns across 95 distantly related lambdoid (pro-)phages.
Main Methods:
- Comparative genomic analysis of 95 lambdoid (pro-)phages.
- Clustering of genomes based on gene content.
- Identification and analysis of homologous protein clusters and their transfer patterns.
- Examination of gene proximity and functional relationships among co-transferred genes.
Main Results:
- Lambdoid phage genomes cluster into 12 distinct groups based on gene content.
- Approximately 26% of homologous protein clusters within four key operons (early left, early right, immunity, late) are involved in gene transfer.
- Frequently co-transferred genes are often located near each other and perform related functions, including those involving structural proteins, repressors (cI, Cro), DNA-binding proteins, and membrane proteins.
Conclusions:
- Gene transfer significantly contributes to the modular genome structure of lambdoid phages.
- Epistatic effects, where gene function depends on the presence of other genes, are a key driver of co-transfer and modular evolution.
- The study provides insights into the mechanisms shaping the genomic diversity and evolution of temperate phages.
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