The contribution of abortive infection to preventing populations of Lactococcus lactis from succumbing to infections with bacteriophage
Rodriguez-Roman, E.; Manuel, J. A.; Goldberg, D. A.; Levin, B. R.
Show abstract
In the dairy industry bacteriophage (phage) contamination significantly impairs the production and quality of products like yogurt and cheese. To combat this issue, the strains of bacteria used as starter cultures possess mechanisms that make them resistant to phage infection, such as envelope resistance, or processes that render them immune to phage infection, such as restriction-modification and CRISPR-Cas. Lactococcus lactis, used to manufacture cheese and other dairy products, can also block the reproduction of infecting phages by abortive infection (Abi), a process in which phage-infected cells die before the phage replicate. We employ mathematical-computer simulation models and experiments with two Lactococcus lactis strains and two lytic phages to investigate the conditions under which Abi can limit the proliferation of phages in L. lactis populations and prevent the extinction of their populations by these viruses. According to our model, if Abi is almost perfect and there are no other populations of bacteria capable of supporting the replication of the L. lactis phages, Abi can protect bacterial populations from succumbing to infections with these viruses. This prediction is supported by the results of our experiment, which indicate that Abi can help protect L. lactis populations from extinction by lytic phage infections. However, our results also predict abortive infection is only one element of L. lactis defenses against phage infection. Mutant phages that can circumvent the Abi systems of these bacteria emerge. The survival of L. lactis populations then depends on the evolution of envelope mutants that are resistant to the evolved host-range phage.
Matching journals
The top 7 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- What makes a temperate phage an effective bacterial weapon? 95%
- Species-scale genomic analysis of S. aureus genes influencing phage host range and their relationships to virulence and antibiotic resistance genes 95%
- Mycobacterium phage Butters-encoded proteins contribute to host defense against viral attack 95%
Similar papers in this journal
- Bacteria-phage (co)evolution is constrained in a synthetic community across multiple bacteria-phage pairs 93%
- Functional diversity increases the efficacy of phage combinations 93%
- The Staphylococcus aureus LXG-domain toxins EsxX and SAR0287 do not promote virulence in a zebrafish larval infection model 93%
Similar papers in this journal
- Cryptic prophage-encoded small protein DicB protects Escherichia coli from phage infection by inhibiting inner membrane receptor proteins 95%
- Phage infection restores PQS signaling and enhances growth of a Pseudomonas aeruginosa lasI quorum-sensing mutant 95%
- Changes in Cell Size and Shape During 50,000 Generations of Experimental Evolution with Escherichia coli 95%
Similar papers in this journal
Similar papers in this journal
- Ecological ubiquity and phylogeny drive nestedness in phages-bacteria networks and shape the bacterial defensome 94%
- Acinetobacter phages use distinct strategies to breach the capsule barrier 94%
- Experimental evolution of a pathogen confronted with innate immune memory increases variation in virulence 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.