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Genome-wide development and deployment of informative intron-spanning and intron-length polymorphism markers for genomics-assisted breeding applications in chickpea

机译:基因组开发和部署信息内含者和内部多态性标志物的基因组学辅助育种育种应用

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摘要

The discovery and large-scale genotyping of informative gene-based markers is essential for rapid delineation of genes/QTLs governing stress tolerance and yield component traits in order to drive genetic enhancement in chickpea. A genome-wide 119169 and 110491 ISM (intron-spanning markers) from 23129 desi and 20386 kabuli protein-coding genes and 7454 in silico InDel (insertion-deletion) (1–45-bp)-based ILP (intron-length polymorphism) markers from 3283 genes were developed that were structurally and functionally annotated on eight chromosomes and unanchored scaffolds of chickpea. A much higher amplification efficiency (83%) and intra-specific polymorphic potential (86%) detected by these markers than that of other sequence-based genetic markers among desi and kabuli chickpea accessions was apparent even by a cost-effective agarose gel-based assay. The genome-wide physically mapped 1718 ILP markers assayed a wider level of functional genetic diversity (19–81%) and well-defined phylogenetics among domesticated chickpea accessions. The gene-derived 1424 ILP markers were anchored on a high-density (inter-marker distance: 0.65 cM) desi intra-specific genetic linkage map/functional transcript map (ICC 4958 × ICC 2263) of chickpea. This reference genetic map identified six major genomic regions harbouring six robust QTLs mapped on five chromosomes, which explained 11–23% seed weight trait variation (7.6–10.5 LOD) in chickpea. The integration of high-resolution QTL mapping with differential expression profiling detected six including one potential serine carboxypeptidase gene with ILP markers (linked tightly to the major seed weight QTLs) exhibiting seed-specific expression as well as pronounced up-regulation especially in seeds of high (ICC 4958) as compared to low (ICC 2263) seed weight mapping parental accessions. The marker information generated in the present study was made publicly accessible through a user-friendly web-resource, “Chickpea ISM-ILP Marker Database”. The designing of multiple ISM and ILP markers (2–5 markers/gene) from an individual gene (transcription factor) with numerous aforementioned desirable genetic attributes can widen the user-preference to select suitable primer combination for simultaneous large-scale assaying of functional allelic variation, natural allelic diversity, molecular mapping and expression profiling of genes among chickpea accessions. This will essentially accelerate the identification of functionally relevant molecular tags regulating vital agronomic traits for genomics-assisted crop improvement by optimal resource expenses in chickpea.
机译:信息基于基因的标志物的发现和大规模基因分型是执政胁迫耐受性和为了推动遗传改良的鹰嘴豆产量性状基因/ QTL的迅速划定必要的。全基因组119169和110491 ISM(内含子跨越标记)从23129 DESI和20386卡布利蛋白质编码基因和7454在硅片个InDel(插入 - 缺失)(1-45-BP)基ILP(内含子长度多态性)从3283个基因标记物开发出了结构和功能注释八条染色体和鹰嘴豆的未锚定支架。高得多的扩增效率(83%)和帧内特定多态型的电位(86%)由这些标志物比的DESI和卡布利鹰嘴豆种质间其他的基于序列的遗传标记检测甚至通过琼脂糖凝胶为基础的具有成本效益是显而易见检测。的范围内的基因组物理映射1718个ILP标记检测功能遗传多样性(19-81%)和家养鹰嘴豆种质间良好定义的系统发育的较宽水平。该基因衍生的1424个ILP标记物锚定在一个高密度(标记物间距离:0.65厘米)鹰嘴豆DESI特定帧内遗传连锁图/功能转录地图(ICC 4958×2263 ICC)。该参考遗传图谱鉴定携带映射到5对染色体,这在鹰嘴豆解释11-23%种子重量性状变化(7.6-10.5 LOD)6点健壮的QTL六个主要的基因组区域。与差异表达谱高分辨率QTL作图的积分检测6包括表现出种子特异性表达以及与ILP标记一个潜在的丝氨酸羧肽酶基因(紧密连锁的主要种子重量的QTL),为显着的上调特别是在高的种子(ICC 4958)相比,低(ICC 2263)的种子重量映射亲本种质。在本研究中所产生的标记信息制成通过一个用户友好的网络资源,“鹰嘴豆ISM-ILP标记数据库”公开访问。的来自个体的基因(转录因子)与许多上述的期望的遗传属性的多个ISM和ILP标记(2-5标记/基因)设计可以拓宽用户偏好来选择用于同时大规模测定功能等位基因的合适的引物组合变型中,天然等位基因多样性,分子映射和表达谱鹰嘴豆种质间基因。这将从根本上加速功能相关的分子标记通过优化资源费用鹰嘴豆调节基因组学辅助作物改良重要农艺性状的鉴定。

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