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Published on: August 19, 2021
Phage Cocktails Constrain the Growth of Enterococcus
Stephen Wandro1, Pooja Ghatbale2, Hedieh Attai2
1Department of Molecular Biology and Biochemistry, University of California, Irvinegrid.266093.8, California, USA.
Abstract:
Phages that infect pathogenic bacteria present a valuable resource for treating antibiotic-resistant infections. We isolated and developed a collection of 19 Enterococcus phages, including myoviruses, siphoviruses, and a podovirus, that can infect both Enterococcus faecalis and Enterococcus faecium. Several of the Myoviridae phages that we found in southern California wastewater were from the Brockvirinae subfamily (formerly Spounavirinae) and had a broad host range across both E. faecium and E. faecalis. By searching the NCBI Sequence Read Archive, we showed that these phages are prevalent globally in human and animal microbiomes. Enterococcus is a regular member of healthy human gut microbial communities; however, it is also an opportunistic pathogen responsible for an increasing number of antibiotic-resistant infections. We tested the ability of each phage to clear Enterococcus host cultures and delay the emergence of phage-resistant Enterococcus. We found that some phages were ineffective at clearing Enterococcus cultures individually but were effective when combined into cocktails. Quantitative PCR was used to track phage abundance in cocultures and revealed dynamics ranging from one dominant phage to an even distribution of phage growth. Genomic characterization showed that mutations in Enterococcus exopolysaccharide synthesis genes were consistently found in the presence of phage infection. This work will help to inform cocktail design for Enterococcus, which is an important target for phage therapy applications. IMPORTANCE Due to the rise in antibiotic resistance, Enterococcus infections are a major health crisis that requires the development of alternative therapies. Phage therapy offers an alternative to antibiotics and has shown promise in both in vitro and early clinical studies. Here, we established a collection of 19 Enterococcus phages and tested whether combining phages into cocktails could delay growth and the emergence of resistant mutants in comparison with individual phages. We showed that cocktails of two or three phages often prevented the growth of phage-resistant mutants, and we identified which phages were replicating the most in each cocktail. When resistant mutants emerged to single phages, they showed consistent accumulation of mutations in exopolysaccharide synthesis genes. These data serve to demonstrate that a cocktail approach can inform efforts to improve efficacy against Enterococcus isolates and reduce the emergence of resistance.
Insights
Phage therapy using bacterial viruses offers a promising alternative to antibiotics for treating resistant Enterococcus infections. Combining phages into cocktails effectively delays the emergence of resistant bacteria, with mutations often occurring in exopolysaccharide genes.
Area of Science:
- Microbiology
- Virology
- Infectious Diseases
Background:
- Antibiotic resistance in Enterococcus is a growing global health crisis.
- Phage therapy presents a viable alternative to conventional antibiotics.
- Enterococcus species are opportunistic pathogens found in human microbiomes.
Purpose of the Study:
- To isolate and characterize Enterococcus phages for potential therapeutic use.
- To evaluate the efficacy of individual phages and phage cocktails against Enterococcus.
- To investigate the mechanisms of phage resistance in Enterococcus.
Main Methods:
- Isolation and characterization of 19 Enterococcus phages (myoviruses, siphoviruses, podovirus).
- Testing phage and cocktail efficacy in clearing Enterococcus cultures and delaying resistance.
- Using quantitative PCR to monitor phage abundance in co-cultures.
- Genomic analysis to identify mutations in resistant Enterococcus strains.
Main Results:
- Several broad-host-range myoviruses were identified globally in microbiomes.
- Phage cocktails (2-3 phages) were more effective than individual phages in preventing resistant mutant emergence.
- Resistant Enterococcus mutants consistently showed mutations in exopolysaccharide synthesis genes.
- Phage abundance varied in co-cultures, from dominance by one phage to even distribution.
Conclusions:
- Phage cocktails are a promising strategy to combat antibiotic-resistant Enterococcus infections.
- Understanding phage-host interactions and resistance mechanisms is crucial for optimizing phage therapy.
- This research informs the design of effective Enterococcus phage cocktails.
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