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Bacteriophage Effectiveness for Biocontrol of Foodborne Pathogens Evaluated via High-Throughput Settings
Published on: August 19, 2021
Assessment of resistance to colicinogenic synthetic phage antimicrobial system
Meghan McGillin1, Jeffrey I Tokman1, Ella Hsu1
1Department of Food Science, Cornell University, Ithaca, New York, USA.
Abstract:
This work presents a multi-hurdle approach that addresses antimicrobial resistance by minimizing the selective pressure of antimicrobials using a novel colicinogenic-phage system. We have created two synthetic T7 phages (T7-E1 and T7-M) by inserting the gene of colicin E1 (Cea) or colicin M (Cma) into the genome of the T7 phage, thereby adding an additional colicin-based hurdle to the T7 lytic cycle. The colicin-phages' efficacy in suppressing the outgrowth of a T7-resistant sub-population within a mixed culture of Escherichia coli was demonstrated using a challenge matrix design under planktonic and structured conditions. When T7-resistant cells were present at 1% of the total planktonic population, T7-E1 delayed the outgrowth. At 0.1% resistance, T7-M delayed resistant outgrowth, whereas T7-E1 suppressed the resistant sub-population. When T7-E1 and T7-M were combined into a triple-hurdle treatment, the T7-E1/T7-M cocktail completely suppressed a mixed planktonic population of 50% resistance cell concentrations. In structured environments, the colicin-phage treatments formed clear and confluent plaque-like zones of clearing in the mixed populations of 50% resistant cells with a lawn density of 1 × 106 CFU/mL. Reducing the lawn density to 1 × 105 CFU/mL diminished the multi-hurdle treatments' effectiveness, as demonstrated by localized zones of clearing within turbid bacterial lawns, highlighting the relationship between bacterial lawn density and phage effectiveness in structured environments. Fluctuation assays revealed persistence as the predominant mechanism for overcoming the treatments by T7-sensitive E. coli. Results indicate that T7-M treatment significantly reduces persister formation compared to WT-T7, while T7-E1 unexpectedly increases persister formation significantly. This suggests a complex relationship between antimicrobial stress and persister formation.
Importance:
Antimicrobial resistance (AMR) poses a significant challenge in treating bacterial infections. To address this, we present a multi-hurdle approach that combines the power of different antimicrobials to target resistance. We have weaponized the natural predator of Escherichia coli, the T7-phage, by engineering it to produce toxins called colicins, resulting in a colicin-phage antimicrobial. This multi-hurdled approach aims to decrease resistance risk because survival requires different tactics to overcome the phage and colicin activity, thus adding a hurdle in a bacterium's pathway to resistance. In cases of pre-existing resistance, the colicin effectively controlled the sub-population resistant to the phage. When investigating the emergence of resistance, we discovered that antimicrobial persistence was the predominant survival strategy. These findings reveal an essential slice of the AMR pie by emphasizing bacterial survival tactics that are not based on resistance genes. By expanding our AMR lens to include persistence, we can more effectively address treatment failure.
Insights
This study engineered T7 phages to produce toxins, creating a colicin-phage system to combat antimicrobial resistance. This multi-hurdle approach effectively suppressed resistant bacteria and highlighted persistence as a key survival strategy.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Antimicrobial resistance (AMR) is a major global health threat requiring novel treatment strategies.
- Bacterial survival can involve resistance genes or non-genetic mechanisms like persistence.
- Phage therapy offers a potential alternative or adjunct to traditional antibiotics.
Purpose of the Study:
- To develop and evaluate a novel colicinogenic-phage system as a multi-hurdle approach against antimicrobial resistance.
- To investigate the efficacy of engineered T7 phages producing colicins (T7-E1 and T7-M) against resistant *Escherichia coli* populations.
- To elucidate the role of bacterial persistence in overcoming phage and colicin treatments.
Main Methods:
- Synthetic T7 phages (T7-E1, T7-M) were engineered to express colicin E1 or colicin M.
- Mixed cultures of *E. coli* with varying percentages of T7-resistant cells were challenged with colicin-phages under planktonic and structured conditions.
- Fluctuation assays were used to assess bacterial persistence mechanisms.
Main Results:
- Colicin-phages T7-E1 and T7-M demonstrated efficacy in suppressing T7-resistant *E. coli* outgrowth, with combined treatment eradicating 50% resistant populations.
- In structured environments, colicin-phages formed zones of clearing, with effectiveness dependent on bacterial lawn density.
- Persistence was identified as a primary survival mechanism; T7-M reduced persister formation, while T7-E1 unexpectedly increased it.
Conclusions:
- The colicin-phage system presents a promising multi-hurdle strategy to combat antimicrobial resistance.
- Understanding bacterial survival tactics beyond resistance genes, such as persistence, is crucial for effective AMR treatment.
- Engineered phages can modulate bacterial persistence, offering new avenues for therapeutic development.
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