Isolation, characterization, and alginate hydrogel delivery of a Klebsiella aerogenes bacteriophage and its impact on biofilm degradation
- Journal
- Current research in microbial sciences (Q1)
- Published
- 27 July 2026
- Study design
- Unclassified
- Evidence level
- Level 5, Expert Opinion (CEBM 5)
- Authors
- Istiaque Zaeem, Shakhinur Islam Mondal, Raphael Kabir Niloy, Nurnabi Azad Jewel, Mohiminur Rahman Mahin, Rita Bhatta, et al.
- PMID
- 42571327
- DOI
- 10.1016/j.crmicr.2026.100652
Why clinicians should know about it
- Picked for Microbiology (medical) (paper of the day, 10 August 2026): Alginate hydrogel delivery of phage degrades K. aerogenes biofilm
Abstract
Multidrug-resistant Klebsiella aerogenes poses a significant clinical challenge due to its antimicrobial resistance and biofilm-forming capacity in chronic wounds and device-associated infections. Bacteriophage therapy offers a promising alternative to conventional antibiotics, though effective delivery systems remain critical for clinical translation. This study reports the isolation, genomic characterization, and alginate hydrogel-based formulation of a lytic bacteriophage, KA_SGEB_01, targeting multidrug-resistant K. aerogenes. The phage was isolated from hospital sewage using multidrug-resistant K. aerogenes as a host. Comprehensive characterizations included plaque morphology and host range determination, multiplicity of infection (MOI) optimization, one-step growth kinetics, antibiofilm activity assays, and environmental stability testing. Complete genome sequencing and annotation were performed. Phage-loaded alginate hydrogels were developed and evaluated for release kinetics, long-term viability, and antibiofilm efficacy. KA_SGEB_01 produced clear plaques (1 ± 0.1 mm) with halos indicative of depolymerase activity and exhibited strict host specificity. The optimal MOI was 0.01 with a 15-minute latent period and the phage remained stable between -20 °C and 50 °C; and across a pH range 6-9. Biofilm assays demonstrated around 60% Crystal-Violet-stained biomass reduction as well as significant biofilm disruption visualized by Scanning Electron Microscopy. Whole-genome sequencing revealed a 175,095 bp double-stranded DNA genome encoding 289 predicted coding sequences, classified within the family Straboviridae, genus Slopekvirus, and lacking any virulence or AMR genes. Encapsulation in alginate hydrogels preserved viability (>10⁹ PFU/mL) for 14 days and enabled sustained release (∼ 67% at 72 h), resulting in significant biofilm biomass inhibition. Collectively, KA_SGEB_01-loaded alginate hydrogels represent a promising platform for treating multidrug-resistant K. aerogenes in wound and device-associated infections caused by the bacterium.
Abstract as published, via PubMed.
For healthcare professionals. The summary is generated by AI from the published abstract, and the evidence level is assigned automatically from the study design on the Oxford CEBM hierarchy. Neither is medical advice. Read the full paper before changing practice.