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Transcriptome analysis reveals key differentially expressed genes involved in wheat grain development

机译:转录组分析揭示了参与小麦籽粒发育的关键差异表达基因

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摘要

Wheat seed development is an important physiological process of seed maturation and directly affects wheat yield and quality. In this study, we performed dynamic transcriptome microarray analysis of an elite Chinese bread wheat cultivar (Jimai 20) during grain development using the GeneChip Wheat Genome Array. Grain morphology and scanning electron microscope observations showed that the period of 11–15 days post-anthesis (DPA) was a key stage for the synthesis and accumulation of seed starch. Genome-wide transcriptional profiling and significance analysis of microarrays revealed that the period from 11 to 15 DPA was more important than the 15–20 DPA stage for the synthesis and accumulation of nutritive reserves. Series test of cluster analysis of differential genes revealed five statistically significant gene expression profiles. Gene ontology annotation and enrichment analysis gave further informa-tion about differentially expressed genes, and MapMan analysis revealed expression changes within functional groups during seed development. Metabolic pathway network analysis showed that major and minor metabolic pathways regulate one another to ensure regular seed development and nutritive reserve accumulation. We performed gene co-expression network analysis to identify genes that play vital roles in seed development and identified several key genes involved in important metabolic pathways. The transcriptional expression of eight key genes involved in starch and protein synthesis and stress defense was further validated by qRT-PCR. Our results provide new insight into the molecular mechanisms of wheat seed development and the determinants of yield and quality.
机译:小麦种子发育是种子成熟的重要生理过程,直接影响小麦的产量和品质。在这项研究中,我们使用GeneChip小麦基因组阵列对中国优质面包小麦品种(集麦20)进行了动态转录组微阵列分析。籽粒形态和扫描电镜观察表明,花后11-15天(DPA)是种子淀粉合成和积累的关键阶段。全基因组转录谱分析和微阵列的显着性分析表明,对于营养储备的合成和积累,从11到15 DPA的时期比15–20 DPA更为重要。差异基因的聚类分析的系列测试揭示了五个具有统计学意义的基因表达谱。基因本体注释和富集分析提供了有关差异表达基因的更多信息,而MapMan分析揭示了种子发育过程中功能组内的表达变化。代谢途径网络分析表明,主要代谢途径和次要代谢途径相互调节,以确保种子的正常发育和营养储备的积累。我们进行了基因共表达网络分析,以鉴定在种子发育中起关键作用的基因,并鉴定了参与重要代谢途径的几个关键基因。通过qRT-PCR进一步验证了参与淀粉和蛋白质合成以及逆境防御的八个关键基因的转录表达。我们的结果为小麦种子发育的分子机制以及产量和品质的决定因素提供了新的见识。

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  • 来源
    《作物学报(英文版)》 |2016年第2期|92-106|共15页
  • 作者单位

    College of Life Sciences, Capital Normal University, Beijing 100048, China;

    College of Life Sciences, Capital Normal University, Beijing 100048, China;

    College of Life Sciences, Capital Normal University, Beijing 100048, China;

    College of Life Sciences, Capital Normal University, Beijing 100048, China;

    College of Life Sciences, Capital Normal University, Beijing 100048, China;

    Hubei Collaborative Innovation Center for Grain Industry/Yangtze University, Jingzhou 434025, China;

    Hubei Collaborative Innovation Center for Grain Industry/Yangtze University, Jingzhou 434025, China;

    College of Life Sciences, Capital Normal University, Beijing 100048, China;

  • 收录信息 中国科学引文数据库(CSCD);中国科技论文与引文数据库(CSTPCD);
  • 原文格式 PDF
  • 正文语种 eng
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