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Analysis of Maize (Zea mays L.) Seedling Roots with the High-Throughput Image Analysis Tool ARIA (Automatic Root Image Analysis)

机译:使用高通量图像分析工具ARIA(自动根图像分析)分析玉米(Zea mays L.)幼苗的根

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摘要

The maize root system is crucial for plant establishment as well as water and nutrient uptake. There is substantial genetic and phenotypic variation for root architecture, which gives opportunity for selection. Root traits, however, have not been used as selection criterion mainly due to the difficulty in measuring them, as well as their quantitative mode of inheritance. Seedling root traits offer an opportunity to study multiple individuals and to enable repeated measurements per year as compared to adult root phenotyping. We developed a new software framework to capture various traits from a single image of seedling roots. This framework is based on the mathematical notion of converting images of roots into an equivalent graph. This allows automated querying of multiple traits simply as graph operations. This framework is furthermore extendable to 3D tomography image data. In order to evaluate this tool, a subset of the 384 inbred lines from the Ames panel, for which extensive genotype by sequencing data are available, was investigated. A genome wide association study was applied to this panel for two traits, Total Root Length and Total Surface Area, captured from seedling root images from WinRhizo Pro 9.0 and the current framework (called ARIA) for comparison using 135,311 single nucleotide polymorphism markers. The trait Total Root Length was found to have significant SNPs in similar regions of the genome when analyzed by both programs. This high-throughput trait capture software system allows for large phenotyping experiments and can help to establish relationships between developmental stages between seedling and adult traits in the future.
机译:玉米根系对于植物的建立以及水分和养分的吸收至关重要。根系结构存在大量的遗传和表型变异,这为选择提供了机会。然而,根性状尚未被用作选择标准,这主要是因为难以测量,以及它们的遗传数量模式。与成年根表型相比,幼苗的根性状提供了研究多个个体的机会,并使每年的重复测量成为可能。我们开发了一个新的软件框架,可以从单个苗根图像中捕获各种特征。该框架基于将根图像转换为等效图形的数学概念。这允许简单地作为图操作自动查询多个特征。该框架还可以扩展到3D断层扫描图像数据。为了评估该工具,对来自Ames小组的384个自交系的子集进行了研究,该子集具有通过测序数据获得的广泛基因型。从WinRhizo Pro 9.0和当前框架(称为ARIA)的幼苗根图像中捕获的两个性状,即总根长和总表面积,进行了全基因组关联研究,以便使用135,311个单核苷酸多态性标记进行比较。当通过两个程序分析时,发现性状总根长在基因组的相似区域中具有显着的SNP。该高通量性状捕获软件系统可进行大型表型试验,并有助于将来建立幼苗与成年性状之间的发育阶段之间的关系。

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