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Biology subjects

Faggion, S.

Publications and source records attributed to Faggion, S..

3 recordsLinked to original sources

The epigenomic landscape of deep lineage divergence: The case of the European sea bass

BackgroundUnderstanding the role of non-coding genomic variation in speciation remains a major challenge in evolutionary biology. Here, we investigated whether regulatory elements contribute to this process between Atlantic and Mediterranean lineages of European sea bass (Dicentrarchus labrax), a well-characterized case-study near speciation where barriers to introgression exist in the presence of connectivity between diverging populations. ResultsWe generated a novel, highly contiguous genome assembly, which was annotated at the epigenomic level using ATAC-seq and ChIP-seq with six embryonic developmental stages and five tissue types in adult fish, identifying thousands of promoters, enhancers, and open chromatin regions. Integrating this annotation with whole-genome sequence data from 65 individuals across three geographically distinct populations, we identified 57,505 outlier SNPs and 332 structural variants (SVs) showing elevated differentiation between Atlantic and East Mediterranean lineages. Outlier SVs affected key regulatory elements and coding genes, while outlier SNPs were enriched in regulatory elements, particularly enhancers active in adult tissues. Local genomic divergence correlated positively with regulatory element density, especially on chromosomes 1, 9, and 18, which are enriched in genes related to osmoregulation, immune response, and oxidative stress -- processes relevant to adaptation across contrasting marine environments. ConclusionsThese findings support a major role for regulatory variation in driving deep lineage divergence through local adaptation.

evolutionary biology↗

Integrated functional genomic analysis identifies the regulatory variants underlying a major QTL for disease resistance in European sea bass

BackgroundViral nervous necrosis (VNN) is a viral disease threatening the sustainability of global aquaculture, and affecting over 50 of farmed and ecologically important species. A major QTL for resistance to VNN has been previously described in European sea bass, but the underlying causal gene(s) and mutation(s) are unknown. To identify the mechanisms and genetic factors underpinning resistance to VNN, we integrated farmed and wild genetic data with multiple functional genomics assays in a farmed European sea bass population. ResultsA high heritability (h2 [~] 0.40) was estimated for VNN resistance. A major QTL for this trait was confirmed on chromosome 3, and whole-genome resequencing narrowed its location to a small region containing 4 copies of interferon alpha inducible protein 27-like 2A (IFI27L2A) genes, and one copy of the interferon alpha inducible protein 27-like 2 (IFI27L2) gene. RNA sequencing revealed a clear association between the QTL genotype and the expression of two of the IFI27L2A genes, and the IFI27L2 gene. Integration with chromatin accessibility and histone modification data pinpointed two SNPs in active regulatory regions of two of these genes (IFI27L2A and IFI27L2), and transcription factor binding site gains for the resistant alleles were predicted. These alleles, particularly the SNP variant CHR3:10077301, exhibited higher frequency in Eastern Mediterranean sea bass populations, which show considerably higher levels of resistance to VNN. ConclusionsThe SNP variant CHR3:10077301, through modulation of IFI27L2 and IFI27L2A genes, is likely the causative mutation underlying resistance to VNN in European sea bass. This is one of the first causative mutations discovered for disease resistance traits, and paves the way for marker-assisted selection as well as biotechnological approaches to enhance resistance to VNN in European sea bass and other susceptible species.

genetics↗

Sex dimorphism in European sea bass (Dicentrarchus labrax L.): new insights into sex-related growth patterns during very early life stages

The European sea bass (Dicentrarchus labrax) exhibits female-biased sexual size dimorphism (SDD) early in development. New tagging techniques provide the opportunity to monitor individual sex-related growth during the post-larval and juvenile stages. We produced an experimental population through artificial fertilization and followed a rearing-temperature protocol ([~]16 {degrees}C from hatching to 112 days post-hatching, dph; [~]20 {degrees}C from 117 to 358 dph) targeting a roughly balanced sex ratio. The fish were tagged with microchips between 61 and 96 dph in five tagging trials of 50 fish each; individual standard length (SL) was recorded through repeated biometric measurements performed between 83 to 110 dph via image analyses. Body weight (BW) was modelled using the traits measured on the digital pictures (i.e. SL, area, height, perimeter and volume). At 117 dph, the fish were tagged with microtags and regularly measured for SL and BW until 335 dph. The experiment ended at 358 dph with the sexing of the fish. The sex-ratio at the end of the experiment was significantly in favor of the females (65.9% vs. 34.1%). The females were significantly longer and heavier than the males from 103 dph ([~]30 mm SL, [~]0.44 g BW) to 165 dph. A significant difference in the daily growth coefficient (DGC) was observed only between 96 and 103 dph, suggesting a physiological or biological change occurring during this period. The female-biased SSD pattern in European sea bass is thus strongly influenced by very early growth differences between sexes, in any case long before gonadal sex differentiation has been started. This leads to the hypothesis that early growth may be a cause rather than a consequence of sex determination in sea bass.

evolutionary biology↗