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首页> 外文期刊>Frontiers in Genetics >Combining Individual Phenotypes of Feed Intake With Genomic Data to Improve Feed Efficiency in Sea Bass
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Combining Individual Phenotypes of Feed Intake With Genomic Data to Improve Feed Efficiency in Sea Bass

机译:将饲料表型与基因组数据结合起来以提高鲈鱼的饲料效率

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摘要

Measuring individual feed intake of fish in farms is complex and precludes selective breeding for feed conversion ratio (FCR). Here, we estimated the individual FCR of 588 sea bass using individual rearing under restricted feeding. These fish were also phenotyped for their weight loss at fasting and muscle fat content that were possibly linked to FCR. The 588 fish were derived from a full factorial mating between parental lines divergently selected for high (F+) or low (F–) weight loss at fasting. The pedigree was known back to the great grand-parents. A subset of 400 offspring and their ancestors were genotyped for 1,110 SNPs which allowed to calculate the genomic heritability of traits. Individual FCR and growth rate in aquarium were both heritable (genomic h ~(2) = 0.47 and 0.76, respectively) and strongly genetically correlated (?0.98) meaning that, under restricted feeding, faster growing fish were more efficient. FCR and growth rate in aquariums were also significantly better for fish with both parents from F– (1.38), worse for fish with two parents F+ (1.51) and intermediate for cross breed fish (F+/F– or F–/F+ at 1.46). Muscle fat content was positively genetically correlated to growth rate in aquarium and during fasting. Thus, selecting for higher growth rate in aquarium, lower weight loss during fasting and fatter fish could improve FCR in aquarium. Improving these traits would also improve FCR of fish in normal group rearing conditions, as we showed experimentally that groups composed of fish with good individual FCR were significantly more efficient. The FCR of groups was also better when the fish composing the groups had, on average, lower estimated breeding values for growth rate during fasting (losing less weight). Thus, improving FCR in aquarium and weight loss during fasting is promising to improve FCR of fish in groups but a selection response experiment needs to be done. Finally, we showed that the reliability of estimated breeding values was higher (from+10% up to +125%) with a genomic-based BLUP model than with a traditional pedigree-based BLUP, showing that genomic data would enhance the accuracy of the prediction of EBV of selection candidates.
机译:测量养殖场中鱼的个体采食量很复杂,因此无法针对饲料转化率(FCR)进行选择性育种。在这里,我们通过在受限喂食的情况下进行个体饲养来估算588海鲈的个体FCR。这些鱼的表型还取决于它们在禁食时的体重减轻和可能与FCR相关的肌肉脂肪含量。 588条鱼取自因空腹时体重减轻高(F +)或体重减轻(F–)不同而选择的亲本系之间的全因子交配。家谱被曾祖父母所熟知。对400个后代及其祖先的一个亚型进行了1,110个SNP的基因分型,从而可以计算出性状的基因组遗传力。水族馆中的个体FCR和生长率都是可遗传的(基因组h〜(2)分别为0.47和0.76),并且具有很强的遗传相关性(?0.98),这意味着在限制饲喂的情况下,较快生长的鱼更有效。父母双亲F–(1.38)的鱼的FCR和生长率也显着提高,两个父母双亲F +(1.51)的鱼更差,跨品种鱼(F + / F–或F– / F +的中间值为1.46) )。肌肉脂肪含量与水族馆和禁食期间的生长呈正相关。因此,选择较高的水族箱生长速度,降低禁食期间的体重减轻和鱼类增脂可以改善水族馆的FCR。改善这些性状也将改善正常组饲养条件下鱼的FCR,因为我们通过实验证明,由具有良好个体FCR的鱼组成的组效率更高。当组成各组的鱼平均在禁食期间生长速度的估计繁殖值较低(体重减轻)时,各组的FCR也会更好。因此,改善水族箱中的FCR和禁食期间的体重减轻有望改善各组鱼类的FCR,但需要进行选择反应实验。最后,我们证明了基于基因组的BLUP模型的估计育种值的可靠性要高(从+ 10%到+ 125%),这表明基于基因组的BLUP模型的估计育种值的可靠性更高。选择候选人的EBV预测。

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