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Comparative Genomics of Lactococcus spp. From Global Aquaculture Outbreaks Reveals Virulence Determinants, Antibiotic Resistance, and Phage Defence Mechanisms
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Metadata
Document Title
Comparative Genomics of Lactococcus spp. From Global Aquaculture Outbreaks Reveals Virulence Determinants, Antibiotic Resistance, and Phage Defence Mechanisms
Author
Blanchard A.M.
Name from Authors Collection
Affiliations
School of Veterinary Medicine and Science, University of Nottingham, Leicestershire, United Kingdom; Aquaculture and Aquatic Resources Management Program, School of Environment, Resources and Development, Klong Luang, Pathum Thani, Thailand Asian Institute of Technology (AIT), Pathum Thani, Khlong Nueng, Thailand; Faculty of Applied Technology, School of Technology, Van Lang University, Ho Chi Minh City, Viet Nam; North West University, Potchefstroom, South Africa; School of Veterinary Medicine, University of Zambia, Lusaka, Zambia; National Centre for Genetic Engineering and Biotechnology (BIOTEC), National Science and Technology Development Agency, Pathum Thani, Khlong Nueng, Thailand; Fish Health Platform, Centre of Excellence for Shrimp Molecular Biology and Biotechnology (Centex Shrimp), Faculty of Science, Mahidol University, Bangkok, Thailand
Type
Article
Source Title
MicrobiologyOpen
ISSN
20458827
Year
2025
Volume
14
Issue
6
Open Access
All Open Access; Gold Open Access; Green Open Access
Publisher
John Wiley and Sons Inc
DOI
10.1002/mbo3.70147
Abstract
Lactococcosis is a major bacterial disease impacting rainbow trout production in South Africa and Southeast Asia, particularly during summer. In this study, 15 isolates from affected aquaculture facilities were characterised, revealing Lactococcus petauri (n = 12) as the predominant species, rather than the traditionally recognised L. garvieae (n = 3). This indicates a potential shift in the aetiology of lactococcosis with implications for diagnosis and management. Genomic screening identified multiple virulence factors, including adhesins in 14 isolates, capsular polysaccharide biosynthesis genes in 12, and sortase-anchored proteins in all isolates, highlighting strain-specific differences in pathogenic potential. Antimicrobial resistance (AMR) profiling revealed ermB (n = 10) and tetS (n = 11), consistent with resistance to macrolides and tetracyclines commonly applied in aquaculture. Phenotypic susceptibility testing against eight antimicrobial agents showed uniform resistance to nalidixic acid (15/15 isolates), alongside resistance to trimethoprim (12/15), sulfamethoxazole (11/15), and ciprofloxacin and oxacillin (7/15 each). These phenotypic results, while not fully aligned with the ARG profile, reflect aquaculture-relevant antimicrobial exposures and indicate the presence of both intrinsic and acquired resistance mechanisms. Most (13/15) isolates contained 1–3 prophage regions, although none of these harboured any known virulence or AMR genes. However, they did genes encoding phage defence such as AbiD and R-M systems. This information is important when considering the potential development of phage therapy to control piscine disease. Together, these findings advance understanding of the epidemiology, pathogenicity, and resistance dynamics of Lactococcus species in aquaculture and underscore the need for sustainable strategies to mitigate lactococcosis outbreaks. © 2025 The Author(s). MicrobiologyOpen published by John Wiley & Sons Ltd.
Keyword
Antimicrobial resistance | Bacteriophage | fish | Lactococcus | prophage | Whole genome sequencing | zoonotic
License
CC BY
Rights
Authors
Publication Source
Scopus