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Author Spotlight: A Comprehensive Protocol for Acinetobacter Biofilm Quantification, Assessment, and Visualization
Published on: August 4, 2023
Characterization, Antibiofilm, and Depolymerizing Activity of Two Phages Active on Carbapenem-Resistant Acinetobacter
Goran Vukotic1,2, Mina Obradovic1, Katarina Novovic1
1Laboratory for Molecular Microbiology, Institute of Molecular Genetics and Genetic Engineering, University of Belgrade, Belgrade, Serbia.
Abstract:
Acinetobacter baumannii is a leading cause of healthcare-associated infections worldwide. Its various intrinsic and acquired mechanisms of antibiotic resistance make the therapeutic challenge even more serious. One of the promising alternative treatments that is increasingly highlighted is phage therapy, the therapeutic use of bacteriophages to treat bacterial infections. Two phages active against nosocomial carbapenem-resistant A. baumannii strain 6077/12, vB_AbaM_ISTD, and vB_AbaM_NOVI, were isolated from Belgrade wastewaters, purified, and concentrated using CsCl gradient ultracentrifugation. The phages were screened against 103 clinical isolates of A. baumannii from a laboratory collection and characterized based on plaque and virion morphology, host range, adsorption rate, and one-step growth curve. Given that phage ISTD showed a broader host range, better adsorption rate, shorter latent period, and larger burst size, its ability to lyse planktonic and biofilm-embedded cells was tested in detail. Phage ISTD yielded a 3.5- and 2-log reduction in planktonic and biofilm-associated viable bacterial cell count, respectively, but the effect was time-dependent. Both phages produced growing turbid halos around plaques indicating the synthesis of depolymerases, enzymes capable of degrading bacterial exopolysaccharides. Halos tested positive for presence of phages in the proximity of the plaque, but not further from the plaque, which indicates that the observed halo enlargement is a consequence of enzyme diffusion through the agar, independently of the phages. This notion was also supported by the growing halos induced by phage preparations applied on pregrown bacterial lawns, indicating that depolymerizing effect was achieved also on non-dividing sensitive cells. Overall, good rates of growth, fast adsorption rate, broad host range, and high depolymerizing activity, as well as antibacterial effectiveness against planktonic and biofilm-associated bacteria, make these phages good candidates for potential application in combating A. baumannii infections.
Insights
Two bacteriophages, ISTD and NOVI, were isolated and characterized for their effectiveness against antibiotic-resistant Acinetobacter baumannii. Phage ISTD demonstrated significant potential in reducing bacterial counts in both planktonic and biofilm forms.
Area of Science:
- Microbiology
- Molecular Biology
- Biotechnology
Background:
- Acinetobacter baumannii is a major cause of healthcare-associated infections globally.
- Antibiotic resistance in A. baumannii presents significant therapeutic challenges.
- Phage therapy is an emerging alternative treatment for bacterial infections.
Purpose of the Study:
- To isolate and characterize bacteriophages active against carbapenem-resistant Acinetobacter baumannii.
- To evaluate the efficacy of selected phages, particularly phage ISTD, against planktonic and biofilm bacterial cells.
- To investigate the depolymerase activity of the isolated phages.
Main Methods:
- Isolation and purification of bacteriophages vB_AbaM_ISTD and vB_AbaM_NOVI from wastewater using CsCl gradient ultracentrifugation.
- Screening and characterization of phages against 103 clinical A. baumannii isolates, including plaque morphology, virion morphology, host range, adsorption rate, and one-step growth curve analysis.
- Assessment of phage ISTD's lytic activity on planktonic and biofilm-embedded cells and analysis of depolymerase activity through halo formation assays.
Main Results:
- Phage ISTD exhibited a broader host range, faster adsorption, shorter latent period, and larger burst size compared to phage NOVI.
- Phage ISTD treatment resulted in 3.5-log and 2-log reductions in planktonic and biofilm bacterial counts, respectively, in a time-dependent manner.
- Both phages produced depolymerases, indicated by halo formation, which degraded bacterial exopolysaccharides, with activity observed even on non-dividing cells.
Conclusions:
- The isolated phages, especially ISTD, show promise as therapeutic agents against Acinetobacter baumannii infections due to their lytic activity, broad host range, and depolymerase production.
- Phage ISTD's effectiveness against both planktonic and biofilm bacteria highlights its potential for combating difficult-to-treat nosocomial infections.
- The depolymerase activity contributes to phage efficacy by degrading bacterial extracellular matrix, suggesting a synergistic mechanism of action.
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