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Genome-wide meta-analysis of maize heterosis reveals the potential role of additive gene expression at pericentromeric loci

机译:玉米杂种优势的全基因组荟萃分析揭示了在着丝粒中心基因座上加性基因表达的潜在作用

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Background The identification of QTL involved in heterosis formation is one approach to unravel the not yet fully understood genetic basis of heterosis - the improved agronomic performance of hybrid F1 plants compared to their inbred parents. The identification of candidate genes underlying a QTL is important both for developing markers and determining the molecular genetic basis of a trait, but remains difficult owing to the large number of genes often contained within individual QTL. To address this problem in heterosis analysis, we applied a meta-analysis strategy for grain yield (GY) of Zea mays L. as example, incorporating QTL-, hybrid field-, and parental gene expression data. Results For the identification of genes underlying known heterotic QTL, we made use of tight associations between gene expression pattern and the trait of interest, identified by correlation analyses. Using this approach genes strongly associated with heterosis for GY were discovered to be clustered in pericentromeric regions of the complex maize genome. This suggests that expression differences of sequences in recombination-suppressed regions are important in the establishment of heterosis for GY in F1 hybrids and also in the conservation of heterosis for GY across genotypes. Importantly functional analysis of heterosis-associated genes from these genomic regions revealed over-representation of a number of functional classes, identifying key processes contributing to heterosis for GY. Based on the finding that the majority of the analyzed heterosis-associated genes were addtitively expressed, we propose a model referring to the influence of cis-regulatory variation on heterosis for GY by the compensation of fixed detrimental expression levels in parents. Conclusions The study highlights the utility of a meta-analysis approach that integrates phenotypic and multi-level molecular data to unravel complex traits in plants. It provides prospects for the identification of genes relevant for QTL, and also suggests a model for the potential role of additive expression in the formation and conservation of heterosis for GY via dominant, multigenic quantitative trait loci. Our findings contribute to a deeper understanding of the multifactorial phenomenon of heterosis, and thus to the breeding of new high yielding varieties.
机译:背景技术鉴定参与杂种优势形成的QTL是揭示杂种优势尚未得到充分了解的遗传基础的一种方法,杂种优势与杂种F1植物相比,其近交亲本具有更高的农艺性能。 QTL潜在候选基因的鉴定对于开发标记和确定性状的分子遗传基础均很重要,但由于单个QTL中经常包含大量基因,因此仍然很困难。为了解决杂种优势分析中的这个问题,我们应用了荟萃分析策略,对玉米(Zea mays L.)的谷物产量(GY)进行了分析,并结合了QTL,杂交田间和亲本基因表达数据。结果为了鉴定已知杂种QTL的基础基因,我们利用了基因表达模式与目标性状之间的紧密关联,并通过相关分析进行了鉴定。使用这种方法,发现与GY杂种优势密切相关的基因聚集在复杂玉米基因组的着丝粒区域中。这表明重组抑制区中序列的表达差异对于在F1杂种中建立GY杂种优势以及在跨基因型保留GY杂种优势非常重要。来自这些基因组区域的与杂种优势相关的基因的重要功能分析揭示了许多功能类别的过度代表,确定了导致GY杂种优势的关键过程。基于发现大多数分析的杂种优势相关基因被加性表达的发现,我们提出了一个模型,该模型通过补偿父母中固定有害表达水平来补偿顺式调控变异对GY杂种优势的影响。结论该研究强调了荟萃分析方法的实用性,该方法整合了表型和多级分子数据以揭示植物的复杂性状。它为鉴定与QTL相关的基因提供了前景,也为通过显性,多基因定量性状基因座在GY杂种的形成和保守中的加性表达的潜在作用提供了模型。我们的发现有助于更深入地了解杂种优势的多因素现象,从而有助于新高产品种的选育。

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