Abstract
European seabass is one of the most economic species in aquaculture in Mediterranean areas. Viral nervous necrosis (VNN), a disease affecting at least 70 aquatic species, has become the most serious threat to seabass cultured industry. While numerous studies have been performed in order to control this disease, no simple and effective procedures are available. In this thesis, we question genetic variability and the potential of selective breeding as an opportunity to address thwart this threat.After a general introduction (first chapter) and a deep literature review of nodavirus in aquaculture (second chapter), we explore in the third chapter the genetic variability of resistance of different wild populations of European seabass, namely Northern Atlantic (NAT), Western Mediterranean (WEM), Northern-East Mediterranean (NEM) and Southern-East Mediterranean (SEM). To address this question, 2011 fish derived from a full-factorial mating scheme, where 9 WEM dams were crossed with 60 sires originated from NAT, WEM, NEM and SEM (15 sires per population), were reared in “common garden”. At 202 days, 1472 were challenged by nodavirus intraperitoneal injection at a mean body weight of 15.8 g. The rest of fish were kept in a single tank in order to collect performance traits. Strikingly, after pedigree recovery, we reveal a very strong and significant differentiation in VNN resistance among sires’ origin (ranging from 53 to 90%), offspring from East Mediterranean sires being the most resistant (83-90% of survival), offspring from WEM sires being intermediate (62% of survival) and offspring from NAT sires being the most sensitive (53% of survival only). A moderate liability heritability for VNN resistance (0.26±0.11) was estimated and negative correlations between resistance and production traits were shown.In the fourth chapter, a search of Quantitative Trait Loci (QTL) linked to the resistance was performed using a medium linkage map as examined. Therefore, 1717 individuals belonging 397 full-sib families and their parents were genotyped for 2722 SNP markers spotted on a SNPChip. From 1274 significant loci, a 24 linkage groups medium-density linkage map was constructed, as well as sex-specific and Origin-specific linkage maps. From these results, we show a 1.25-fold sex-biased heterochiasmy in favor to female recombination rate. Finally, genome scans for QTLs were performed in different methods, and while no QTLs were identified for both “time to death” or survival, we discuss the effect of the experimental design used.In the fifth chapter, a two-step unweighted then weighted Genome-Wide Association Study (GWAS & wGWAS) was carried out based on linear mixed models using the same SNPs as for QTL mapping. The aim was to determine whether we can detect significant individual SNPs linked to resistance against VNN. After SNPs weight calculation, the wGWAS detected one significant SNP explaining 3.11% of the resistance belonging to LG9. Finally, the potential for genomics prediction for VNN resistance using the different genomic models was performed and extensively presented. However, no significant differences were observed between genomic-based estimated breeding values and pedigree-based estimated breeding values.In conclusion, this study depicts a large genetic variation for VNN resistance in wild seabass populations but with negative genetic correlations with production traits. These latter results are valuable to help to define strategies for genetic improvement of resistance against VNN of European seabass. Moreover, the first assumptions on the location of potential QTLs claim for a fine QTL mapping and an expectable add-value of the use of genomic information in potential marker-assisted selection to VNN resistance in European seabass.