The Specific Capsule Depolymerase of Phage PMK34 Sensitizes Acinetobacter baumannii to Serum Killing
Специфичная капсульная деполимераза фага PMK34 повышает чувствительность Acinetobacter baumannii к сывороточному лизису
2022-05-17
SCID: 54.1/2ave8g6y
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Acinetobacter baumanniiantivirulence compoundbacteriophage PMK34capsule depolymeraseserum killing
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Abstract (AI)
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.
Key Findings
1
Although DpoMK34 lacks intrinsic antibacterial activity, it made A. baumannii MK34 fully susceptible to serum killing in a concentration-dependent manner.
2
Degrading the MK34 capsule reduced PMK34 adsorption from 95% to 9% within 5 minutes.
3
DpoMK34 did not readily select resistant mutants against either the depolymerase or phage PMK34, supporting its potential use in antivirulence depolymerase cocktails.
4
DpoMK34 is a modular, trimeric capsule depolymerase from phage PMK34 with variable domains determining enzymatic activity and host specificity.
5
DpoMK34 is specific for the capsule of clinical Acinetobacter baumannii isolate MK34 and remains active up to 50 °C across pH 4–11.
Research Object
DpoMK34 capsule depolymerase and the capsule of clinical Acinetobacter baumannii MK34
Research Subject
The enzyme’s capsule-degrading specificity, activity and ability to sensitize A. baumannii MK34 to serum killing and limit resistance selection
Publication Details
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2022-05-17
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