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首页> 外文期刊>Plant Biotechnology Journal >Transient Nod factor-dependent gene expression in the nodulation-competent zone of soybean (Glycine max [L.] Merr.) roots
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Transient Nod factor-dependent gene expression in the nodulation-competent zone of soybean (Glycine max [L.] Merr.) roots

机译:瞬态点头因子依赖性基因表达在大豆的旋转态度(甘氨酸Max [L.] Merr。)根

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摘要

All lateral organ development in plants, such as nodulation in legumes, requires the temporal and spatial regulation of genes and gene networks. A total mRNA profiling approach using RNA-seq to target the specific soybean (Glycine max) root tissues responding to compatible rhizobia [i.e. the Zone Of Nodulation (ZON)] revealed a large number of novel, often transient, mRNA changes occurring during the early stages of nodulation. Focusing on the ZON enabled us to discard the majority of root tissues and their developmentally diverse gene transcripts, thereby highlighting the lowly and transiently expressed nodulation-specific genes. It also enabled us to concentrate on a precise moment in early nodule development at each sampling time. We focused on discovering genes regulated specifically by the Bradyrhizobium-produced Nod factor signal, by inoculating roots with either a competent wild-type or incompetent mutant (nodC-) strain of Bradyrhizobium japonicum. Collectively, 2915 genes were identified as being differentially expressed, including many known soybean nodulation genes. A number of unknown nodulation gene candidates and soybean orthologues of nodulation genes previously reported in other legume species were also identified. The differential expression of several candidates was confirmed and further characterized via inoculation time-course studies and qRT-PCR. The expression of many genes, including an endo-1,4-beta-glucanase, a cytochrome P450 and a TIR-LRR-NBS receptor kinase, was transient, peaking quickly during the initiation of nodule ontogeny. Additional genes were found to be down-regulated. Significantly, a set of differentially regulated genes acting in the gibberellic acid (GA) biosynthesis pathway was discovered, suggesting a novel role of GAs in nodulation.
机译:植物中的所有侧向器官发育,例如豆类核糖的植物,需要基因和基因网络的时间和空间调节。使用RNA-SEQ靶向特定大豆(甘氨酸最大)根组织的总mRNA分析方法对兼容根瘤菌进行响应[即结节区域(Zon)]揭示了在染色的早期阶段期间发生的大量新颖,通常是短暂的mRNA变化。专注于ZON使我们能够丢弃大多数根组织及其发育不同的基因转录物,从而突出显示低且瞬时表达的特异性基因。它还使我们能够专注于每个采样时间的早期结节发育中的精确时刻。我们专注于发现由Bradyrhizobium产生的点系数信号专门调节的基因,通过接种具有态度的野生型或不称职的突变体(NODC-)japonicum的突变型突变体(Nodc-)菌株。共同地,将2915个基因鉴定为差异表达,包括许多已知的大豆瘤结调基因。还鉴定了许多未知的染色基因候选物和先前在其他豆类物种中报道的染色基因的大豆原序。通过接种时间课程研究和QRT-PCR确认了几种候选物的差异表达和进一步表征。许多基因的表达,包括Endo-1,4-β-葡聚糖酶,细胞色素P450和TIR-LR-NBS受体激酶,在结节组来的开始期间快速达到瞬时峰值。发现额外的基因被测调节。值得注意的是,发现了一组作用于赤霉酸(GA)生物合成途径的差异调节基因,表明气体在旋转中的一种新作用。

著录项

  • 来源
    《Plant Biotechnology Journal 》 |2012年第8期| 共16页
  • 作者单位

    Australian Research Council Centre of Excellence for Integrative Legume Research The University of Queensland St. Lucia Brisbane Qld Australia;

    Australian Research Council Centre of Excellence for Integrative Legume Research The University of Queensland St. Lucia Brisbane Qld Australia;

    Australian Centre for Plant Functional Genomics School of Agriculture and Food Sciences The University of Queensland Brisbane Qld Australia;

    Australian Centre for Plant Functional Genomics School of Agriculture and Food Sciences The University of Queensland Brisbane Qld Australia;

    Australian Centre for Plant Functional Genomics School of Agriculture and Food Sciences The University of Queensland Brisbane Qld Australia;

    Australian Research Council Centre of Excellence for Integrative Legume Research The University of Queensland St. Lucia Brisbane Qld Australia;

    Australian Research Council Centre of Excellence for Integrative Legume Research The University of Queensland St. Lucia Brisbane Qld Australia;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子生物学 ;
  • 关键词

    plant development; legume; nodule; signalling; symbiosis; transcriptome.;

    机译:植物发展;豆科;结节;信号;共生;转录组。;

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