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Shared Genetic Control of Root System Architecture between Zea mays and Sorghum bicolor

机译:ZEA 5月和高粱双子石中根系结构的共享遗传控制

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Determining the genetic control of root system architecture (RSA) in plants via large-scale genome-wide association study (GWAS) requires high-throughput pipelines for root phenotyping. We developed Core Root Excavation using Compressed-air (CREAMD), a high-throughput pipeline for the cleaning of field-grown roots, and Core Root Feature Extraction (COFE), a semiautomated pipeline for the extraction of RSA traits from images. CREAMD-COFE was applied to diversity panels of maize (Zea mays) and sorghum (Sorghum bicolor), which consisted of 369 and 294 genotypes, respectively. Six RSA-traits were extracted from images collected from >3,300 maize roots and >1,470 sorghum roots. Single nucleotide polymorphism (SNP)-based GWAS identified 87 TAS (trait-associated SNPs) in maize, representing 77 genes and 115 TAS in sorghum. An additional 62 RSA-associated maize genes were identified via expression read depth GWAS. Among the 139 maize RSA-associated genes (or their homologs), 22 (16%) are known to affect RSA in maize or other species. In addition, 26 RSA-associated genes are coregulated with genes previously shown to affect RSA and 51 (37% of RSA-associated genes) are themselves transe-quantitative trait locus for another RSA-associated gene. Finally, the finding that RSA-associated genes from maize and sorghum included seven pairs of syntenic genes demonstrates the conservation of regulation of morphology across taxa.
机译:确定根系统架构(RSA)在植物中的经由大型全基因组关联研究(GWAS)遗传控制需要高通量的管道为根表型。我们开发的核心根开挖采用压缩空气(CREAMD),高吞吐量的管道用于野外生长的根的清洁和根的核心特征提取(由CoFe),RSA的特点,从图像中提取半自动流水线。 CREAMD-的CoFe施加到玉米的多样性面板(玉蜀黍)和高粱(高粱),其分别由369个294基因型。六RSA-性状从> 3300玉米根> 1470高粱根收集的图像提取。单核苷酸多态性(SNP)为基础的GWAS在玉米标识87个TAS(性状相关的SNP),代表77个基因和高粱115个TAS。额外的62 RSA相关玉米基因被鉴定通过表达阅读深度GWAS。在139玉米RSA相关基因(或它们的同源物),22(16%)已知影响RSA在玉米或其他物种。此外,26 RSA相关基因与基因协同调节先前显示出影响RSA和51(的RSA相关基因37%)本身TRANSE定量性状基因座为另一个RSA相关基因。最后,从玉米和高粱RSA相关的基因包括7双同线基因的发现表明整个类群形态调节的保护。

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