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Open access Aug 2026

Genomic characterization and phage cocktail suppression of a multidrug-resistant Vibrio sinaloensis isolate from diseased shrimp

ABSTRACT Vibrio sinaloensis has been reported in association with disease events in aquaculture, yet its genomic features and non-antibiotic suppression strategies remain largely unexplored. Here, we report genomic characterization of a multidrug-resistant V. sinaloensis strain, ZZ006, isolated from diseased shrimp and evaluate phage-mediated suppression of this strain in vitro. The ZZ006 genome harbors multiple putative virulence-associated secretion systems and antimicrobial resistance genes, suggesting chromosomal carriage of traits potentially relevant to host association and antimicrobial tolerance. Using this isolate and its phage-resistant derivatives as hosts, we isolated and characterized three novel bacteriophages (VS1, VS2, VS3) with complementary infection strategies. Their combined application efficiently suppressed ZZ006 growth in vitro and reduced the emergence of phage-resistant populations compared with individual phages. Whole-genome resequencing of cocktail-resistant isolates revealed recurrent mutations in pilus- and pseudopilin-associated genes, consistent with receptor-level phage resistance. This study provides genomic characterization of an aquaculture-associated V. sinaloensis isolate and establishes an in vitro framework for phage cocktail suppression and resistance-evolution analysis, supporting future evaluation of phage-based biocontrol in aquaculture-relevant settings. IMPORTANCE Vibrio sinaloensis has been detected in diseased aquaculture animals, and multidrug-resistant isolates may complicate disease management. By integrating genomic analysis with experimental phage therapy, this work characterizes a multidrug-resistant V. sinaloensis isolate from diseased shrimp and evaluates in vitro phage-mediated suppression of this isolate and its phage-resistance evolution. These findings offer actionable solutions for mitigating antibiotic resistance and enhancing sustainability in aquaculture systems. Vibrio sinaloensis has been detected in diseased aquaculture animals, and multidrug-resistant isolates may complicate disease management. By integrating genomic analysis with experimental phage therapy, this work characterizes a multidrug-resistant V. sinaloensis isolate from diseased shrimp and evaluates in vitro phage-mediated suppression of this isolate and its phage-resistance evolution. These findings offer actionable solutions for mitigating antibiotic resistance and enhancing sustainability in aquaculture systems.

Zhongfeixue Wang, Jiulong Zhao, Chengcheng Li et al. · 0 citations
Aug 2026

Functional Characterization and Catalytic Mechanism of an Amidase Involved in Acetaminophen Degradation from Acinetobacter sp.

The accumulation of acetaminophen (APAP) in agricultural soils and water systems poses risks to ecosystems and public health. This study characterizes Acinetobacter sp. DL27, an APAP-degrading strain with broad temperature and pH adaptability, demonstrating its bioremediation potential in soil and wastewater. Through high-resolution mass spectrometry, we identified three novel metabolic intermediates, thereby refining the bacterial APAP degradation pathway. Multiomics analysis elucidated metabolic coordination and stress-tolerance mechanisms, leading to the identification of a novel amidase (AdA). Recombinant AdA exhibited activity over 10–60 °C and pH 4.0–10.0, with a Km of 8.96 ± 1.03 μM and a kcat/Km of 9.04 μM–1s–1, indicating higher catalytic efficiency than previously reported APAP amidases. Molecular dynamics simulations and site-directed mutagenesis confirmed that a Ser161–Ser185–Lys82 triad constitutes the catalytic center driving amide cleavage. These findings provide mechanistic insights into bacterial APAP biodegradation and highlight the practical application potential of strain DL27 and AdA.

Boxiang Kou, Yufei Yue, Lei Wang et al. · 0 citations

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