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首页> 外文期刊>International Journal of Genetics and Genomics >Identification of Candidate Genes for Body Weight in Broilers Using Extreme-Phenotype Genome-Wide Association Study
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Identification of Candidate Genes for Body Weight in Broilers Using Extreme-Phenotype Genome-Wide Association Study

机译:极端表型基因组 - 范围基因研究鉴定肉鸡体重的候选基因

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Traditionally, genome-wide association studies (GWAS) require maximum numbers of genotyped and phenotyped animals to efficiently detect marker-trait associations. Under financial constraints, alternative solutions should be envisaged such that of performing GWAS with fractioned samples of the population. In the present study, we investigated the potential of using random and extreme phenotype samples of a population including 6,700 broilers in detecting significant markers and candidate genes for a typical complex trait (body weight at 35 days). We also explored the utility of using continuous vs. dichotomized phenotypes to detect marker-trait associations. Present results revealed that extreme phenotype samples were superior to random samples while detection efficacy was higher on the continuous over the dichotomous phenotype scale. Furthermore, the use of 50% extreme phenotype samples resulted in detection of 8 out of the 10 markers identified in whole population sampling. Putative causative variants identified in 50% extreme phenotype samples resided in genomic regions harboring 10 growth-related QTLs (e.g. breast muscle percentage, abdominal fat weight etc.) and 6 growth related genes (CACNB1, MYOM2, SLC20A1, ANXA4, FBXO32, SLAIN2). Current findings proposed the use of 50% extreme phenotype sampling as the optimal sampling strategy when performing a cost-effective GWAS.
机译:传统上,基因组 - 范围的关联研究(GWAs)需要最大数量的基因分型和表型动物,以有效地检测标记性关联。根据财务限制,应设想替代解决方案,使得具有分数的人口样本进行GWA。在本研究中,我们研究了使用群体的随机和极端表型样品的潜力,其中包含6,700个肉鸡检测典型复杂性状的重要标记和候选基因(35天的体重)。我们还探讨了使用连续与二分的表型以检测标志性关联的效用。目前的结果表明,极端表型样品优于随机样品,而在二分表型刻度上的连续率较高。此外,使用50%的极端表型样品导致在整个人口采样中鉴定的10种标记中检测8个。推定的致病变体在50%的极端表型样本中鉴定在含有10种生长相关QTL的基因组区域(例如乳房肌肉百分比,腹部脂肪重量等)和6种生长相关基因(CacnB1,Myom2,SLC20A1,ANXA4,FBXO32,SLAIN2)中。当前发现提出使用50%的极端表型采样作为执行具有成本效益的GWA时的最佳采样策略。

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