ArticleMicrobiology spectrum2022
Understanding the Dynamic of POMS Infection and the Role of Microbiota Composition in the Survival of Pacific Oysters, Crassostrea gigas.
Article in Microbiology spectrum, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed, 24 citations in OpenAlex.
- Food deprivation enhances disease resistance: Underlying mechanisms in oysters confronted with pacific oyster mortality syndrome.iScience · 2026Article
- Molecular assessment of oyster microbiomes and viromes reveals their potential as pathogen and ecological sentinels.One health (Amsterdam, Netherlands) · 2025Article
- A suite of ddPCR assays targeting microbial pathogens for improved management of shellfish aquaculture.Applied and environmental microbiology · 2025Article
- Microbial education plays a crucial role in harnessing the beneficial properties of microbiota for infectious disease protection in Crassostrea gigas.Scientific reports · 2024Article
- Review
- Temperature and microbe mediated impacts of the San Diego Bay ostreid herpesvirus (OsHV-1) microvariant on juvenile Pacific oysters.Sustainable microbiology · 2024Article
- The Effects of Larval Cryopreservation on the Epigenetics of the Pacific OysterInternational journal of molecular sciences · 2023Article
- Inactivated ostreid herpesvirus-1 induces an innate immune response in the Pacific oyster,Frontiers in immunology · 2023Article
- Dominant bacterial taxa drive microbiome differences of juvenile Pacific oysters of the same age and variable sizes.Frontiers in microbiomes · 2023Article
Corrections and comments
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Authors and funding
9 authors at 3 institutions in 2 countries.
Funding
No grant is acknowledged in the PubMed record.
Abstract
For over a decade, Pacific oyster mortality syndrome (POMS), a polymicrobial disease, induced recurring episodes of massive mortality affecting Crassostrea gigas oysters worldwide. Recent studies evidenced a combined infection of the ostreid herpesvirus (OsHV-1 μVar) and opportunistic bacteria in affected oysters. However, the role of the oyster microbiota in POMS is not fully understood. While some bacteria can protect hosts from infection, even minor changes to the microbial communities may also facilitate infection and worsen disease severity. Using a laboratory-based experimental infection model, we challenged juveniles from 10 biparental oyster families with previously established contrasted genetically based ability to survive POMS in the field. Combining molecular analyses and 16S rRNA gene sequencing with histopathological observations, we described the temporal kinetics of POMS and characterized the changes in microbiota during infection. By associating the microbiota composition with oyster mortality rate, viral load, and viral gene expression, we were able to identify both potentially harmful and beneficial bacterial amplicon sequence variants (ASVs). We also observed a delay in viral infection resulting in a later onset of mortality in oysters compared to previous observations and a lack of evidence of fatal dysbiosis in infected oysters. Overall, these results provide new insights into how the oyster microbiome may influence POMS disease outcomes and open new perspectives on the use of microbiome composition as a complementary screening tool to determine shellfish health and potentially predict oyster vulnerability to POMS.
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