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Identifying Transcription Factor Genes Associated with Yield Traits in Chickpea

机译:鉴定鹰嘴豆中含有产量性状相关的转录因子基因

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Identification of potential transcription factor (TF) gene-derived natural SNP allelic variants regulating pod and seed yield component traits by large-scale mining and genotyping of SNPs in natural germplasm accessions coupled with high-resolution association mapping is vital for understanding the complex genetic architecture of quantitative yield traits in chickpea. In these perspectives, the current study employed a genome-wide GBS (genotyping-by-sequencing) and targeted gene amplicon resequencing-based simultaneous SNP discovery and genotyping assays, which discovered 1611 novel SNPs from 736 TF genes physically mapped on eight chromosomes and unanchored scaffolds of kabuli chickpea genome. These SNPs were structurally and functionally annotated in diverse synonymous and non-synonymous coding as well as non-coding regulatory and intronic sequence components of chickpea TF genes. A high-resolution genetic association analysis was performed by correlating the genotyping information of 1611 TF gene-based SNPs with multi-location/years field phenotyping data of six major pod and seed yield traits evaluated in a constituted association panel (326 desi and kabuli germplasm accessions) of chickpea. This essentially identified 27 TF gene-derived SNPs exhibiting significant association with six major yield traits, namely days to 50% flowering (DF), plant height (PH), branch number (BN), pod number (PN), seed number (SN) and seed weight (SW) in chickpea. These trait-associated SNPs individually and in combination explained 10-23% and 32% phenotypic variation respectively for the studied yield component traits. Interestingly, novel non-synonymous coding SNP allelic variants in five potential candidate TF genes encoding SBP (squamosal promoter binding protein), SNF2 (sucrose non-fermenting 2), GRAS [Gibberellic acid insensitive (GAI)-Repressor of GAI (RGA)-SCARECROW (SCR)], bZIP (basic leucine zipper) and LOB (lateral organ boundaries)-domain proteins associated strongly with DF, PH, BN, PN, SN and SW traits respectively were found most promising in chickpea. The functionally relevant molecular signatures (TFs and natural SNP alleles) delineated by us have potential to accelerate marker-assisted genetic enhancement by developing high pod and seed yielding cultivars of chickpea.
机译:通过大规模挖掘和对自然种质资源中的SNPs进行基因分型,结合高分辨率关联作图,识别调控pod和种子产量构成性状的潜在转录因子(TF)基因衍生的自然SNP等位基因变体,对于理解鹰嘴豆数量产量性状的复杂遗传结构至关重要。在这些观点中,目前的研究采用了全基因组GBS(通过测序进行基因分型)和基于靶基因扩增子重新测序的同步SNP发现和基因分型分析,从物理映射到八条染色体和卡布利鹰嘴豆基因组的未固定支架上的736个TF基因中发现了1611个新的SNP。这些SNP在鹰嘴豆TF基因的不同同义和非同义编码以及非编码调控和内含子序列成分中进行了结构和功能注释。通过将1611个基于TF基因的SNP的基因分型信息与鹰嘴豆组成的关联小组(326份desi和kabuli种质资源)中评估的六个主要荚果和种子产量性状的多位置/年田间表型数据相关联,进行了高分辨率遗传关联分析。这基本上确定了27个TF基因衍生的SNP,它们与鹰嘴豆的六个主要产量性状显著相关,即开花天数(DF)、株高(PH)、分枝数(BN)、荚果数(PN)、种子数(SN)和种子重(SW)。这些与性状相关的SNP单独或组合解释了所研究的产量构成性状的10-23%和32%表型变异。有趣的是,五个潜在候选TF基因中新的非同义编码SNP等位基因变体编码SBP(鳞片启动子结合蛋白)、SNF2(蔗糖非发酵2)、GRAS[赤霉素不敏感(GAI)-GAI(RGA)-稻草人(SCR)]、bZIP(碱性亮氨酸拉链)和LOB(侧器官边界)-与DF、PH、BN、PN强烈相关的结构域蛋白,鹰嘴豆的SN和SW性状最有希望。我们描述的功能相关分子标记(TFs和自然SNP等位基因)有可能通过开发高产荚果和种子的鹰嘴豆品种来加速标记辅助的遗传增强。

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