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一种整合全基因组关联研究和表达数量性状位点作图的正向遗传学方法,用于剖析玉米(Zea mays)叶片发育。

A forward genetics approach integrating genome-wide association study and expression quantitative trait locus mapping to dissect leaf development in maize (Zea mays).

机构信息

Institute of Life Sciences, Scuola Superiore Sant'Anna, Pisa, 56127, Italy.

Department of Plant Biotechnology and Bioinformatics, Ghent University, Ghent, 9052, Belgium.

出版信息

Plant J. 2021 Aug;107(4):1056-1071. doi: 10.1111/tpj.15364. Epub 2021 Jul 8.

DOI:10.1111/tpj.15364
PMID:34087008
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8519057/
Abstract

The characterization of the genetic basis of maize (Zea mays) leaf development may support breeding efforts to obtain plants with higher vigor and productivity. In this study, a mapping panel of 197 biparental and multiparental maize recombinant inbred lines (RILs) was analyzed for multiple leaf traits at the seedling stage. RNA sequencing was used to estimate the transcription levels of 29 573 gene models in RILs and to derive 373 769 single nucleotide polymorphisms (SNPs), and a forward genetics approach combining these data was used to pinpoint candidate genes involved in leaf development. First, leaf traits were correlated with gene expression levels to identify transcript-trait correlations. Then, leaf traits were associated with SNPs in a genome-wide association (GWA) study. An expression quantitative trait locus mapping approach was followed to associate SNPs with gene expression levels, prioritizing candidate genes identified based on transcript-trait correlations and GWAs. Finally, a network analysis was conducted to cluster all transcripts in 38 co-expression modules. By integrating forward genetics approaches, we identified 25 candidate genes highly enriched for specific functional categories, providing evidence supporting the role of vacuolar proton pumps, cell wall effectors, and vesicular traffic controllers in leaf growth. These results tackle the complexity of leaf trait determination and may support precision breeding in maize.

摘要

对玉米(Zea mays)叶片发育的遗传基础进行特征分析,可能有助于培育具有更高活力和生产力的植物。在这项研究中,分析了一个由 197 个双亲和多亲玉米重组自交系(RILs)组成的作图群体,以研究幼苗期的多个叶片性状。使用 RNA 测序来估计 RILs 中 29573 个基因模型的转录水平,并衍生出 373769 个单核苷酸多态性(SNP),然后结合这些数据采用正向遗传学方法来确定参与叶片发育的候选基因。首先,将叶片性状与基因表达水平相关联,以确定转录-性状相关性。然后,在全基因组关联(GWA)研究中,将叶片性状与 SNP 相关联。接着,采用表达数量性状基因座作图方法将 SNP 与基因表达水平相关联,根据转录-性状相关性和 GWAs 对候选基因进行优先级排序。最后,进行了网络分析,将所有转录物聚类到 38 个共表达模块中。通过整合正向遗传学方法,我们确定了 25 个候选基因,这些基因高度富集于特定功能类别,为液泡质子泵、细胞壁效应物和囊泡运输控制器在叶片生长中的作用提供了证据。这些结果解决了叶片性状决定的复杂性问题,可能为玉米的精准育种提供支持。

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