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Quantile regression for genome-wide association study of flowering time-related traits in common bean

机译:蚕豆开花时间相关性状全基因组关联研究的分位数回归

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摘要

Flowering is an important agronomic trait. Quantile regression (QR) can be used to fit models for all portions of a probability distribution. In Genome-wide association studies (GWAS), QR can estimate SNP (Single Nucleotide Polymorphism) effects on each quantile of interest. The objectives of this study were to estimate genetic parameters and to use QR to identify genomic regions for phenological traits (Days to first flower—DFF; Days for flowering—DTF; Days to end of flowering—DEF) in common bean. A total of 80 genotypes of common beans, with 3 replicates were raised at 4 locations and seasons. Plants were genotyped for 384 SNPs. Traditional single-SNP and 9 QR models, ranging from equally spaced quantiles (τ) 0.1 to 0.9, were used to associate SNPs to phenotype. Heritabilities were moderate high, ranging from 0.32 to 0.58. Genetic and phenotypic correlations were all high, averaging 0.66 and 0.98, respectively. Traditional single-SNP GWAS model was not able to find any SNP-trait association. On the other hand, when using QR methodology considering one extreme quantile (τ = 0.1) we found, respectively 1 and 7, significant SNPs associated for DFF and DTF. Significant SNPs were found on Pv01, Pv02, Pv03, Pv07, Pv10 and Pv11 chromosomes. We investigated potential candidate genes in the region around these significant SNPs. Three genes involved in the flowering pathways were identified, including Phvul.001G214500, Phvul.007G229300 and Phvul.010G142900.1 on Pv01, Pv07 and Pv10, respectively. These results indicate that GWAS-based QR was able to enhance the understanding on genetic architecture of phenological traits (DFF and DTF) in common bean.
机译:开花是重要的农艺性状。分位数回归(QR)可用于拟合概率分布所有部分的模型。在全基因组关联研究(GWAS)中,QR可以估计SNP(单核苷酸多态性)对每个目标分位数的影响。这项研究的目的是估计遗传参数,并使用QR识别普通豆的物候特性(到第一朵花的天-DFF;到开花的天-DTF;到开花结束的天-DEF)的基因组区域。在4个地点和季节共饲养了80种普通豆基因型,其中3种重复。对植物进行384个SNP的基因分型。传统的单SNP和9 QR模型(从等距分位数(τ)0.1到0.9)用于将SNP与表型相关联。遗传度中等偏高,范围从0.32至0.58。遗传和表型相关性均很高,分别为0.66和0.98。传统的单SNP GWAS模型无法找到任何SNP性状关联。另一方面,使用QR方法考虑一个极端分位数(τ= 0.1)时,我们发现分别为1和7的DFF和DTF相关的重要SNP。在Pv01,Pv02,Pv03,Pv07,Pv10和Pv11染色体上发现了重要的SNP。我们调查了这些重要的SNPs周围区域中的潜在候选基因。鉴定了三个涉及开花途径的基因,分别在Pv01,Pv07和Pv10上包括Phvul.001G214500,Phvul.007G229300和Phvul.010G142900.1。这些结果表明基于GWAS的QR能够增强对普通豆的物候性状(DFF和DTF)的遗传结构的理解。

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