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Identification of candidate tolerance genes to low-temperature during maize germination by GWAS and RNA-seq approaches

机译:GWAS和RNA-SEQ方法鉴定含玉米萌发期间低温候选耐受性基因的鉴定

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Maize (Zea mays L.) is one of the main agricultural crops with the largest yield and acreage in the world. However, maize germplasm is very sensitive to low temperatures, mainly during germination, and low temperatures significantly affect plant growth and crop yield. Therefore, the identification of genes capable of increasing tolerance to low temperature has become necessary. In this study, fourteen phenotypic traits related to seed germination were used to assess the genetic diversity of maize through genome-wide association study (GWAS). A total of 30 single-nucleotide polymorphisms (SNPs) linked to low-temperature tolerance were detected (?log10(P)??4), fourteen candidate genes were found to be directly related to the SNPs, further additional 68 genes were identified when the screen was extended to include a linkage disequilibrium (LD) decay distance of r2?≥?0.2 from the SNPs. RNA-sequencing (RNA-seq) analysis was then used to confirm the linkage between the candidate gene and low-temperature tolerance. A total of ten differentially expressed genes (DEGs) ( log2 fold change (FC) ?≥?0.585, P??0.05) were found within the set distance of LD decay (r2?≥?0.2). Among these genes, the expression of six DEGs was verified using qRT-PCR. Zm00001d039219 and Zm00001d034319 were putatively involved in ‘mitogen activated protein kinase (MAPK) signal transduction’ and ‘fatty acid metabolic process’, respectively, based on Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) enrichment analyses. Thus, these genes appeared to be related to low-temperature signal transduction and cell membrane fluidity. Overall, by integrating the results of our GWAS and DEG analysis of low-temperature tolerance during germination in maize, we were able to identify a total of 30 SNPs and 82 related candidate genes, including 10 DEGs, two of which were involved in the response to tolerance to low temperature. Functional analysis will provide valuable information for understanding the genetic mechanism of low-temperature tolerance during germination in maize.
机译:玉米(Zea Mays L.)是世界上最大产量和种植面积的主要农作物之一。然而,玉米种质对低温非常敏感,主要在萌发期间,低温显着影响植物生长和作物产量。因此,需要鉴定能够提高低温耐受性的基因。在这项研究中,使用与种子萌发相关的十四个表型性状来评估通过基因组 - 范围的协会研究(GWAS)的玉米遗传多样性。检测到与低温耐受相连的30个单核苷酸多态性(SNP)(αlog10(p)?> 4),发现十四个候选基因与SNP直接相关,鉴定了另外的68个基因当筛网扩展到包括r2的连杆不平衡(ld)衰减距离θ≥≤0.2。然后使用RNA测序(RNA-SEQ)分析来确认候选基因与低温耐受性之间的连杆。在LD衰减的设定距离内发现总共10个差异表达基因(DEGS)(LOG2折叠变化(Fc)?≥≤0.585,p≤≤0.585)(R2?≥≤0.2)。在这些基因中,使用QRT-PCR来验证六℃的表达。 ZM00001D039219和ZM00001D034319分别基于基因本体学(GO)和基因组(KEGG)富集分析的基因本体(GO)和京都百科全书分别涉及“促丝糖原活化蛋白激酶(MAPK)信号转导”和“脂肪酸代谢过程”。因此,这些基因似乎与低温信号转导和细胞膜流动性有关。总体而言,通过整合我们的G​​WAS和玉米萌发期间低温耐受性的结果,我们能够鉴定总共30个SNP和82个相关的候选基因,其中包括10次,其中两次参与了反应耐受低温。功能分析将提供有价值的信息,以了解玉米萌发过程中低温耐受性的遗传机制。

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