Life stage and vaccination shape the gut microbiome of hatchery-reared Atlantic salmon (Salmo salar)
Andres, K. J.; Liu, B.; Johnson, L. E.; Kapuscinski, K. L.; Moerke, A. H.; Ling, F.; Knouft, J. H.
Show abstract
Microbiomes play an essential role in promoting host health and fitness, but the factors affecting variation in gut microbiomes among individuals are not fully understood. Investigating the microbiome under different conditions is needed to link gut microbiomes to host physiology and potentially design manipulations to improve rearing success of captive species. In this study, we characterized the gut microbiomes of Atlantic salmon (Salmo salar) in individuals at different life stages, vaccination status, and hatchery origin. Microbiomes differed between age-0 sub-adults and adults, with sub-adults exhibiting higher diversity and more similar communities when compared to adults. We also found that vaccines against bacterial kidney disease reduced gut microbial diversity within individual sub-adult salmon, resulting in dissimilar gut microbial communities among individuals. The diversity and structure of microbiomes did not differ between groups of adults that were reared in two different hatcheries and sampled from the wild. Sub-adults, particularly unvaccinated sub-adults, displayed a strong core microbiome present in the majority of individuals. Our results suggest that life stage and vaccination status are essential factors in the gut microbiome development of salmon. Conditions experienced during early life stages appear to have a strong influence on the microbiome, but differences among individuals at early life stages may be lost due to environmental factors experienced later in life. The plasticity of the microbiome throughout the life of individuals may have important implications for understanding host health, with potential applications for improving the rearing and reintroduction success of the ecologically and economically important Atlantic salmon. IMPORTANCEThe Atlantic salmon (Salmo salar) is a globally important fisheries and aquaculture species, but the factors affecting gut microbiomes of hatchery-reared fish are not fully understood. Our study explores the influence of life stage, vaccination status, and hatchery origin on the composition and structure of the Atlantic salmon gut microbiome. We found that life stage is an important driver of gut microbiome diversity, likely driven by differences in habitat and diet. Vaccination against bacterial kidney disease led to marked declines in gut microbial diversity within individuals, resulting in highly distinct gut microbial communities among individuals. Hatchery origin did not have a strong influence on adult Atlantic salmon captured from the wild. These findings suggest that life stage and vaccination drive variation in Atlantic salmon microbiomes, but the stability and long-term implications of such variation on host health should be considered in future microbiome research.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Microbial ecology of Atlantic salmon, Salmo salar, hatcheries: impacts of the built environment on fish mucosal microbiota 97%
- Metagenomic shotgun analyses reveal complex patterns of intra- and interspecific variation in the intestinal microbiomes of codfishes 97%
- Host and Water Microbiota are Differentially Linked to Potential Human Pathogen Accumulation in Oysters 95%
Similar papers in this journal
- Consistent changes in the intestinal microbiota of Atlantic salmon fed insect meal diets 97%
- Host Genome Drives the Diversity, Richness, and Beneficial Microbes in the Shrimp Microbiota: A Hologenome Perspective. 95%
- Wild gut microbiome suppresses the opportunistic pathogen Aeromonas in medaka under domesticated rearing conditions 95%
Similar papers in this journal
- Temporal, environmental, and biological drivers of the mucosal microbiome in a wild marine fish, Scomber japonicus 96%
- Variable phylosymbiosis and cophylogeny patterns in wild fish gut microbiota in a large subtropical river 95%
- Herptile gut microbiomes: a natural system to study multi-kingdom interactions between filamentous fungi and bacteria 93%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.