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Biology subjects

Espe, M.

Publications and source records attributed to Espe, M..

2 recordsLinked to original sources

Altered spawning seasons of Atlantic salmon broodstock genetically and epigenetically influence cell cycle and lipid-mediated regulations in their offspring

Manipulating spawning seasons of Atlantic salmon (Salmo salar) is a common practice to facilitate year-round harvesting in salmon aquaculture. This process involves adjusting water temperature and light regime to control female broodstock maturation. However, recent studies have indicated that altered spawning seasons can significantly affect the nutritional status and growth performance of the offspring. Therefore, gaining a deeper understanding of the biological regulations influenced by these alterations is crucial to enhance the growth performance of fish over multiple generations. In this study, we investigated omics data from four different spawning seasons achieved through recirculating aquaculture systems (RAS) and sea-pen-based approaches. In addition to the normal spawning season in November (sea-pen), three altered seasons were designated: off-season (five-month advance, RAS), early season (two-month advance, sea-pen), and late season (two-month delay, sea-pen). We conducted comprehensive gene expression and DNA methylation analysis on liver samples collected from the start-feeding larvae of the next generation. Our results revealed distinct gene expression and DNA methylation patterns associated with the altered spawning seasons. Specifically, offspring from RAS-based off-season exhibited altered lipid-mediated regulation, while those from sea-pen-based early and late seasons showed changes in cellular processes, particularly in cell cycle regulation when compared to the normal season. The consequences of our findings are significant for growth and health, potentially providing information for developing valuable tools for assessing growth potential and optimizing production strategies in aquaculture. Author SummaryThis study examines the impact of manipulating Atlantic salmon spawning seasons in aquaculture on genetic and epigenetic regulations in their offspring. Manipulating water temperature and light cycles during broodstock rearing allows for year-round harvesting. In aquaculture, altering spawning seasons is a common practice; however, recent research suggests that these changes affect the nutritional status and growth of offspring. To understand these effects at the molecular level, we analysed transcriptomic and epigenetic data from salmon offspring born to broodstock with four different spawning seasons. Our results reveal distinct transcriptomic and epigenetic patterns associated with altered seasons, influencing lipid metabolism and cell cycle regulation. These findings hold significant implications for improving aquaculture practices, potentially enhancing growth performance and nutritional quality of farmed salmon across generations as temperature and light are crucial abiotic factors influencing the next generation. Furthermore, our study potentially contributes to understanding the impact of climate change on the spawning behaviour of aquatic vertebrates, particularly in relation to increasing global ocean temperatures and the resulting changes in photoperiod as species migrate northward in the Northern Hemisphere, experiencing longer daylight in summer and shorter daylight in winter.

genomics↗

One-carbon metabolism nutrients impact the interplay between DNA methylation and gene expression in liver, enhancing protein synthesis in Atlantic Salmon

Supplementation of one-carbon (1C) metabolism micronutrients, which include B-vitamins and methionine, is essential for the healthy growth and development of Atlantic salmon (Salmo salar). However, the recent shift towards non-fish meal diets in salmon aquaculture has led to the need for reassessments of recommended micronutrient levels. Despite the importance of 1C metabolism in growth performance and various cellular regulations, the molecular mechanisms affected by these dietary alterations are less understood. To investigate the molecular effect of 1C nutrients, we analysed gene expression and DNA methylation using two types of omics data: RNA sequencing (RNA-seq) and reduced-representation bisulfite sequencing (RRBS). We collected liver samples at the end of a feeding trial that lasted 220 days through the smoltification stage, where fish were fed three different levels of four key 1C nutrients: methionine, vitamin B6, B9, and B12. Our results indicate that the dosage of 1C nutrients significantly impacts genetic and epigenetic regulations in the liver of Atlantic salmon, particularly in biological pathways related to protein synthesis. The interplay between DNA methylation and gene expression in these pathways may play an important role in the mechanisms underlying growth performance affected by 1C metabolism. Author SummaryAtlantic salmon rely on one-carbon (1C) metabolism micronutrients like B-vitamins and methionine, which they acquire through their diets. Small pelagic fish are the primary source in the wild, but finding sustainable alternatives such as plants, insects, and algae is challenging as salmon aquaculture expands. Adjusting nutrient levels when changing base ingredients further complicates the task. Understanding the molecular mechanisms affected by these micronutrients is crucial for aquaculture sustainability. In this study, we investigated the molecular effects of 1C metabolism micronutrients on Atlantic salmon. Liver samples from salmon fed varying levels of key 1C nutrients over a 220-day trial were analysed using RNA sequencing (RNA-seq) and reduced-representation bisulfite sequencing (RRBS) to assess gene expression and DNA methylation, respectively. Our results revealed significant impacts of 1C nutrient dosage on genetic and epigenetic regulations in the salmon liver, particularly in protein synthesis pathways. The interplay between DNA methylation and gene expression in these pathways influences growth performance under 1C metabolism. Uncovering molecular changes resulting from dietary alterations provides valuable insights to optimize nutritional requirements in salmon aquaculture, supporting sustainable production and welfare of this important species.

genetics↗