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Published on: January 7, 2019
The Specific Capsule Depolymerase of Phage PMK34 Sensitizes Acinetobacter baumannii to Serum Killing
Karim Abdelkader1,2, Diana Gutiérrez1, Agnieszka Latka1,3
1Department of Biotechnology, Ghent University, Valentin Vaerwyckweg 1, 9000 Gent, Belgium.
Abstract:
The rising antimicrobial resistance is particularly alarming for Acinetobacter baumannii, calling for the discovery and evaluation of alternatives to treat A. baumannii infections. Some bacteriophages produce a structural protein that depolymerizes capsular exopolysaccharide. Such purified depolymerases are considered as novel antivirulence compounds. We identified and characterized a depolymerase (DpoMK34) from Acinetobacter phage vB_AbaP_PMK34 active against the clinical isolate A. baumannii MK34. In silico analysis reveals a modular protein displaying a conserved N-terminal domain for anchoring to the phage tail, and variable central and C-terminal domains for enzymatic activity and specificity. AlphaFold-Multimer predicts a trimeric protein adopting an elongated structure due to a long α-helix, an enzymatic β-helix domain and a hypervariable 4 amino acid hotspot in the most ultimate loop of the C-terminal domain. In contrast to the tail fiber of phage T3, this hypervariable hotspot appears unrelated with the primary receptor. The functional characterization of DpoMK34 revealed a mesophilic enzyme active up to 50 °C across a wide pH range (4 to 11) and specific for the capsule of A. baumannii MK34. Enzymatic degradation of the A. baumannii MK34 capsule causes a significant drop in phage adsorption from 95% to 9% after 5 min. Although lacking intrinsic antibacterial activity, DpoMK34 renders A. baumannii MK34 fully susceptible to serum killing in a serum concentration dependent manner. Unlike phage PMK34, DpoMK34 does not easily select for resistant mutants either against PMK34 or itself. In sum, DpoMK34 is a potential antivirulence compound that can be included in a depolymerase cocktail to control difficult to treat A. baumannii infections.
Insights
A novel depolymerase, DpoMK34, effectively degrades the capsule of Acinetobacter baumannii, enhancing susceptibility to serum killing and offering a promising antivirulence strategy against resistant infections.
Area of Science:
- Microbiology
- Structural Biology
- Biochemistry
Background:
- Rising antimicrobial resistance in Acinetobacter baumannii necessitates novel therapeutic strategies.
- Bacteriophage-derived depolymerases are emerging as potent antivirulence compounds by targeting bacterial capsules.
Purpose of the Study:
- To identify and characterize a depolymerase (DpoMK34) from Acinetobacter phage vB_AbaP_PMK34.
- To evaluate the antivirulence potential of DpoMK34 against clinical isolates of A. baumannii.
Main Methods:
- In silico analysis of the depolymerase structure using AlphaFold-Multimer.
- Functional characterization of DpoMK34's enzymatic activity, stability, and specificity.
- Assessment of DpoMK34's impact on A. baumannii capsule integrity, phage adsorption, and serum susceptibility.
Main Results:
- DpoMK34 is a modular, trimeric protein with optimal activity at mesophilic temperatures and a broad pH range (4-11).
- Degradation of the A. baumannii MK34 capsule by DpoMK34 significantly reduced phage adsorption and increased susceptibility to serum killing.
- DpoMK34 demonstrated a low propensity for selecting resistant mutants, unlike the parent phage.
Conclusions:
- DpoMK34 is a specific and effective depolymerase against A. baumannii MK34.
- DpoMK34 shows significant potential as an antivirulence agent, particularly when used in combination therapies to combat difficult-to-treat A. baumannii infections.
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