Faculty of Chemistry, Biotechnology and Food Science, Norwegian University of Life Sciences, Ås, Norway.
Faculty of Biosciences, Norwegian University of Life Sciences, Ås, Norway.
Nat Microbiol. 2024 Nov;9(11):3059-3074. doi: 10.1038/s41564-024-01830-7. Epub 2024 Oct 14.
To ensure sustainable aquaculture, it is essential to understand the path 'from feed to fish', whereby the gut microbiome plays an important role in digestion and metabolism, ultimately influencing host health and growth. Previous work has reported the taxonomic composition of the Atlantic salmon (Salmo salar) gut microbiome; however, functional insights are lacking. Here we present the Salmon Microbial Genome Atlas consisting of 211 high-quality bacterial genomes, recovered by cultivation (n = 131) and gut metagenomics (n = 80) from wild and farmed fish both in freshwater and seawater. Bacterial genomes were taxonomically assigned to 14 different orders, including 35 distinctive genera and 29 previously undescribed species. Using metatranscriptomics, we functionally characterized key bacterial populations, across five phyla, in the salmon gut. This included the ability to degrade diet-derived fibres and release vitamins and other exometabolites with known beneficial effects, which was supported by genome-scale metabolic modelling and in vitro cultivation of selected bacterial species coupled with untargeted metabolomic studies. Together, the Salmon Microbial Genome Atlas provides a genomic and functional resource to enable future studies on salmon nutrition and health.
为了确保可持续水产养殖,了解“从饲料到鱼类”的途径至关重要,在此过程中,肠道微生物组在消化和新陈代谢中发挥着重要作用,最终影响宿主的健康和生长。之前的工作已经报道了大西洋鲑(Salmo salar)肠道微生物组的分类组成;然而,缺乏功能方面的见解。在这里,我们展示了由培养(n=131)和淡水和海水中的野生和养殖鱼类的肠道宏基因组(n=80)获得的 211 个高质量细菌基因组组成的“三文鱼微生物基因组图谱”。细菌基因组在 14 个不同的目进行了分类,包括 35 个独特的属和 29 个以前未描述的种。通过宏转录组学,我们对三文鱼肠道中五个门的关键细菌种群进行了功能特征描述。这包括降解饮食来源纤维的能力,并释放具有已知有益作用的维生素和其他外代谢物,这得到了基因组规模代谢建模以及与非靶向代谢组学研究相结合的选定细菌物种的体外培养的支持。总之,“三文鱼微生物基因组图谱”提供了一个基因组和功能资源,以支持未来对三文鱼营养和健康的研究。