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Antimicrobial Synergy Testing by the Inkjet Printer-assisted Automated Checkerboard Array and the Manual Time-kill Method
Published on: April 18, 2019
Synergistic effects of halo-plaque forming phage cocktails against polymicrobial Acinetobacter baumannii and
Ampapan Naknaen1, Arrita Rueangrit1, Wanna Sudhikaran2
1Department of Biomedical Sciences and Biomedical Engineering, Faculty of Medicine, Prince of Songkla University, Songkhla, Thailand.
Abstract:
Antimicrobial resistance is a growing global health crisis, with polymicrobial infections caused by Acinetobacter baumannii and Staphylococcus aureus posing a significant healthcare challenge due to their synergistic virulence, multidrug resistance, high incidence, and association with severe outcomes. Accordingly, urgent alternative treatments are needed, with bacteriophage or phage therapy showing considerable promise. Here, we isolated six phage types based on plaque morphology, including small clear plaques (SCP; phiAR002 and phiAR004), medium clear plaques (MCP; phiAR010 and phiAR011), and hazy-halo plaques (HHP; phiAR014 and phiAR015). These phages demonstrate the ability to lyse a broad spectrum of several carbapenem-resistant A. baumannii strains collected from secondary and tertiary care hospitals in Thailand, highlighting their suitability for therapeutic applications. To broaden host range and enhance bactericidal activity, phage cocktails comprising the halo-forming phage (phiAR014) in combination with either SCP (phiAR002) or MCP (phiAR010), which are genetically and mechanistically distinct, were formulated and demonstrated synergistic effects, suppressing bacterial growth for up to 36 h. These relatively small myophages, SCP and MCP, possess larger genomes (around 165-188 kbp) compared with HHP (around 106 kbp), exhibit a longer latent period (30 min versus 20 min), and produce a greater number of progenies, yielding 678-882 PFU per infected cell compared with 255 PFU per infected cell for HHP. To demonstrate their therapeutic potential, the phage cocktails were further assessed in co-cultures of A. baumannii and S. aureus under both planktonic and biofilm conditions. Cocktails combining HHP with SCP or MCP exhibited significant synergistic antibacterial activity at MOIs of 10 and 100, with effects evident within 10 h and sustained for 24 h. Relative to individual phages and uninfected controls, the cocktails achieved greater bacterial reduction, decreasing A. baumannii by approximately 2 log₁₀ CFU/mL compared with single phages (and ~5 log₁₀ versus controls) and S. aureus by ~2 log₁₀ CFU/mL. Moreover, the cocktails significantly enhanced biofilm inhibition and eradication compared to single-phage treatments, demonstrating synergistic interactions. These findings indicate that halo phages represent promising therapeutic candidates with potent antibacterial and anti-biofilm activity against polymicrobial infections.IMPORTANCEPhages are promising therapeutic agents due to their host specificity and ability to penetrate biofilms via structural and enzymatic mechanisms. The halo-plaque phenotype, indicative of depolymerase activity, facilitates the degradation of extracellular polysaccharides and cell wall components, thereby enhancing infectivity and biofilm penetration. Based on phenotypic and genomic characterization, halo-forming phage cocktails were developed and demonstrated effective suppression of polymicrobial growth and disruption of established biofilms in A. baumannii and S. aureus co-culture models. These cocktails exhibited synergistic inhibition of planktonic growth, biofilm formation, and biofilm eradication. Phage replication and lysis of A. baumannii may promote the release of putative depolymerases and/or cell wall hydrolases that could potentially contribute to matrix degradation; however, further investigation is required to elucidate the precise mechanisms and enzymatic functions involved. Together, these findings would pave the way for advancing halo-forming phages and support the targeted engineering of tail fiber or spike proteins for therapeutic applications in multidrug-resistant polymicrobial infections.
Insights
Halo-forming phages and their cocktails show significant potential in combating multidrug-resistant bacterial infections. These phage cocktails effectively inhibit polymicrobial growth and eradicate biofilms, offering a promising alternative to antibiotics.
Area of Science:
- Microbiology
- Infectious Diseases
- Biotechnology
Background:
- Antimicrobial resistance (AMR) is a global crisis, with polymicrobial infections caused by multidrug-resistant (MDR) bacteria like *Acinetobacter baumannii* and *Staphylococcus aureus* posing significant challenges.
- Bacteriophage (phage) therapy is an emerging alternative treatment with host specificity and biofilm penetration capabilities.
Purpose of the Study:
- To isolate and characterize bacteriophages effective against carbapenem-resistant *Acinetobacter baumannii*.
- To develop synergistic phage cocktails for enhanced therapeutic efficacy against polymicrobial infections.
- To evaluate the anti-biofilm activity of phage cocktails.
Main Methods:
- Isolation and plaque morphology characterization of six bacteriophage types (SCP, MCP, HHP).
- Formulation of phage cocktails combining halo-forming phages with small or medium clear plaque phages.
- Assessment of cocktail efficacy against *A. baumannii* and *S. aureus* co-cultures in planktonic and biofilm states.
Main Results:
- Phage cocktails demonstrated synergistic antibacterial activity, suppressing bacterial growth for up to 36 hours.
- Cocktails significantly reduced *A. baumannii* and *S. aureus* populations in co-cultures.
- Synergistic inhibition and eradication of biofilms were observed with phage cocktails compared to single phages.
Conclusions:
- Halo-forming phages and their cocktails exhibit potent antibacterial and anti-biofilm activity against polymicrobial infections.
- Phage cocktails offer a promising therapeutic strategy for multidrug-resistant infections, potentially by degrading biofilm matrices.
- Further research into phage mechanisms and engineering could advance their application in treating complex infections.
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