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基于图像的高通量表型分析中性状测量误差的遗传决定因素的识别和利用。

Identification and utilization of genetic determinants of trait measurement errors in image-based, high-throughput phenotyping.

机构信息

Department of Agronomy, Iowa State University, Ames, Iowa 50011, USA.

Department of Mechanical Engineering, Iowa State University, Ames, Iowa 50011, USA.

出版信息

Plant Cell. 2021 Aug 31;33(8):2562-2582. doi: 10.1093/plcell/koab134.

Abstract

The accuracy of trait measurements greatly affects the quality of genetic analyses. During automated phenotyping, trait measurement errors, i.e. differences between automatically extracted trait values and ground truth, are often treated as random effects that can be controlled by increasing population sizes and/or replication number. In contrast, there is some evidence that trait measurement errors may be partially under genetic control. Consistent with this hypothesis, we observed substantial nonrandom, genetic contributions to trait measurement errors for five maize (Zea mays) tassel traits collected using an image-based phenotyping platform. The phenotyping accuracy varied according to whether a tassel exhibited "open" versus. "closed" branching architecture, which is itself under genetic control. Trait-associated SNPs (TASs) identified via genome-wide association studies (GWASs) conducted on five tassel traits that had been phenotyped both manually (i.e. ground truth) and via feature extraction from images exhibit little overlap. Furthermore, identification of TASs from GWASs conducted on the differences between the two values indicated that a fraction of measurement error is under genetic control. Similar results were obtained in a sorghum (Sorghum bicolor) plant height dataset, demonstrating that trait measurement error is genetically determined in multiple species and traits. Trait measurement bias cannot be controlled by increasing population size and/or replication number.

摘要

性状测量的准确性极大地影响了遗传分析的质量。在自动化表型分析中,性状测量误差(即自动提取的性状值与真实值之间的差异)通常被视为随机效应,可以通过增加群体大小和/或重复次数来控制。相比之下,有一些证据表明性状测量误差可能部分受到遗传控制。与这一假设一致,我们观察到五个玉米(Zea mays)雄穗性状的基于图像的表型分析平台采集的数据中,性状测量误差存在大量非随机的遗传贡献。表型分析的准确性取决于雄穗分枝结构是“开放”还是“封闭”,而这本身就是遗传控制的。通过对五个已通过手动(即真实值)和从图像特征提取进行表型分析的雄穗性状进行全基因组关联研究(GWAS)鉴定的性状相关 SNP(TAS)与从手动和图像两种方法的表型数据中鉴定的 TAS 很少重叠。此外,从两种方法的差异进行的 GWAS 中鉴定的 TAS 表明,一部分测量误差受到遗传控制。在高粱(Sorghum bicolor)株高数据集的类似结果表明,性状测量误差在多个物种和性状中是由遗传决定的。增加群体大小和/或重复次数不能控制性状测量偏差。

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