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Main Authors: Yue, Yufei, Zhao, Jiulong, Wang, Zengmeng, Yin, Rui, He, Yang, Li, Chengcheng, Zhang, Yongyu
Format: Artículo científico
Language:en
Published: Applied and environmental microbiology 2026
Subjects:
Online Access:https://pubmed.ncbi.nlm.nih.gov/41524417/
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author Yue, Yufei
Zhao, Jiulong
Wang, Zengmeng
Yin, Rui
He, Yang
Li, Chengcheng
Zhang, Yongyu
author_facet Yue, Yufei
Zhao, Jiulong
Wang, Zengmeng
Yin, Rui
He, Yang
Li, Chengcheng
Zhang, Yongyu
Yue, Yufei
Zhao, Jiulong
Wang, Zengmeng
Yin, Rui
He, Yang
Li, Chengcheng
Zhang, Yongyu
collection PubMed - marine biology
contents Mining a vibriophage depolymerase for enhanced pathogen control in aquaculture. Yue, Yufei Zhao, Jiulong Wang, Zengmeng Yin, Rui He, Yang Li, Chengcheng Zhang, Yongyu Vibrio Aquaculture Bacteriophages Viral Proteins Biofilms Genome, Viral Glycoside Hydrolases Carboxylic Ester Hydrolases Despite the promise of phages as antibiotic alternatives, their efficacy is often undermined by the rapid emergence of bacterial resistance. Phage-derived enzymes, particularly depolymerases, offer a compelling strategy to overcome this limitation and enhance antibacterial therapy. Focusing on pathogens, the major threats to global aquaculture, our bioinformatic analysis revealed that 79.4% of cultured and 46.2% of uncultured phages encode putative depolymerases, underscoring a vast but underexploited antibacterial resource. We further isolated and characterized VnaP, a depolymerase-encoding phage (novel genus, ) that forms distinctive halo plaques indicative of depolymerase activity. Genome analysis identified ORF193, encoding a novel polysaccharide depolymerase lacking sequence or structural homology to any characterized depolymerases. Heterologously expressed Dep193 efficiently degraded surface polysaccharides and exhibited potent antibiofilm activity. While Dep193 exhibits modest standalone antibacterial activity, its synergistic combination with VnaP significantly enhances bacterial clearance and delays resistance emergence across multiple species. As the first biochemically validated phage depolymerase, Dep193 broadens the known diversity of these enzymes and establishes an effective strategy for control in aquaculture.IMPORTANCEThe rapid emergence of antibiotic-resistant strains threatens global aquaculture sustainability, necessitating alternative antimicrobial strategies. This study identifies and characterizes Dep193, a novel phage-encoded depolymerase with polysaccharide-degrading and antibiofilm activities that enhances phage therapy efficacy through a previously unreported mechanism. The Dep193-phage VnaP combination exhibits broad-spectrum activity against multiple species, demonstrating strong potential as a therapeutic strategy for aquaculture. Notably, Dep193 lacks any recognizable functional domains found in characterized depolymerases, representing the first validated member of a novel evolutionary clade. These findings expand the known diversity of phage depolymerases and provide a promising avenue for the targeted control of infections in aquaculture.
format Artículo científico
id pubmed_41524417
institution PubMed
language en
publishDate 2026
publisher Applied and environmental microbiology
record_format pubmed
spellingShingle Mining a vibriophage depolymerase for enhanced pathogen control in aquaculture.
Yue, Yufei
Zhao, Jiulong
Wang, Zengmeng
Yin, Rui
He, Yang
Li, Chengcheng
Zhang, Yongyu
Vibrio
Aquaculture
Bacteriophages
Viral Proteins
Biofilms
Genome, Viral
Glycoside Hydrolases
Carboxylic Ester Hydrolases
Mining a vibriophage depolymerase for enhanced pathogen control in aquaculture. Yue, Yufei Zhao, Jiulong Wang, Zengmeng Yin, Rui He, Yang Li, Chengcheng Zhang, Yongyu Vibrio Aquaculture Bacteriophages Viral Proteins Biofilms Genome, Viral Glycoside Hydrolases Carboxylic Ester Hydrolases Despite the promise of phages as antibiotic alternatives, their efficacy is often undermined by the rapid emergence of bacterial resistance. Phage-derived enzymes, particularly depolymerases, offer a compelling strategy to overcome this limitation and enhance antibacterial therapy. Focusing on pathogens, the major threats to global aquaculture, our bioinformatic analysis revealed that 79.4% of cultured and 46.2% of uncultured phages encode putative depolymerases, underscoring a vast but underexploited antibacterial resource. We further isolated and characterized VnaP, a depolymerase-encoding phage (novel genus, ) that forms distinctive halo plaques indicative of depolymerase activity. Genome analysis identified ORF193, encoding a novel polysaccharide depolymerase lacking sequence or structural homology to any characterized depolymerases. Heterologously expressed Dep193 efficiently degraded surface polysaccharides and exhibited potent antibiofilm activity. While Dep193 exhibits modest standalone antibacterial activity, its synergistic combination with VnaP significantly enhances bacterial clearance and delays resistance emergence across multiple species. As the first biochemically validated phage depolymerase, Dep193 broadens the known diversity of these enzymes and establishes an effective strategy for control in aquaculture.IMPORTANCEThe rapid emergence of antibiotic-resistant strains threatens global aquaculture sustainability, necessitating alternative antimicrobial strategies. This study identifies and characterizes Dep193, a novel phage-encoded depolymerase with polysaccharide-degrading and antibiofilm activities that enhances phage therapy efficacy through a previously unreported mechanism. The Dep193-phage VnaP combination exhibits broad-spectrum activity against multiple species, demonstrating strong potential as a therapeutic strategy for aquaculture. Notably, Dep193 lacks any recognizable functional domains found in characterized depolymerases, representing the first validated member of a novel evolutionary clade. These findings expand the known diversity of phage depolymerases and provide a promising avenue for the targeted control of infections in aquaculture.
title Mining a vibriophage depolymerase for enhanced pathogen control in aquaculture.
topic Vibrio
Aquaculture
Bacteriophages
Viral Proteins
Biofilms
Genome, Viral
Glycoside Hydrolases
Carboxylic Ester Hydrolases
url https://pubmed.ncbi.nlm.nih.gov/41524417/