首页> 外文期刊>Journal of Plant Research >Transcriptome analysis of soybean (Glycine max) root genes differentially expressed in rhizobial, arbuscular mycorrhizal, and dual symbiosis
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Transcriptome analysis of soybean (Glycine max) root genes differentially expressed in rhizobial, arbuscular mycorrhizal, and dual symbiosis

机译:大豆的转录体分析(甘氨酸最大)根基因在Rhizobial,丛枝菌根和双共生中表达

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摘要

Soybean (Glycine max) roots establish associations with nodule-inducing rhizobia and arbuscular mycorrhizal (AM) fungi. Both rhizobia and AM fungi have been shown to affect the activity of and colonization by the other, and their interactions can be detected within host plants. Here, we report the transcription profiles of genes differentially expressed in soybean roots in the presence of rhizobial, AM, or rhizobial-AM dual symbiosis, compared with those in control (uninoculated) roots. Following inoculation, soybean plants were grown in a glasshouse for 6 weeks; thereafter their root transcriptomes were analyzed using an oligo DNA microarray. Among the four treatments, the root nodule number and host plant growth were highest in plants with dual symbiosis. We observed that the expression of 187, 441, and 548 host genes was up-regulated and 119, 1,439, and 1,298 host genes were down-regulated during rhizobial, AM, and dual symbiosis, respectively. The expression of 34 host genes was up-regulated in each of the three symbioses. These 34 genes encoded several membrane transporters, type 1 metallothionein, and transcription factors in the MYB and bHLH families. We identified 56 host genes that were specifically up-regulated during dual symbiosis. These genes encoded several nodulin proteins, phenylpropanoid metabolism-related proteins, and carbonic anhydrase. The nodulin genes up-regulated by the AM fungal colonization probably led to the observed increases in root nodule number and host plant growth. Some other nodulin genes were down-regulated specifically during AM symbiosis. Based on the results above, we suggest that the contribution of AM fungal colonization is crucial to biological N-2-fixation and host growth in soybean with rhizobial-AM dual symbiosis.
机译:大豆(甘氨酸最大)根系与结核诱导的根瘤菌和丛枝菌根(AM)真菌建立关联。无论是根瘤菌和AM真菌都已显示出对另一个的影响和殖民化的活动,它们可以在宿主植物中检测它们的相互作用。在这里,我们报告在根瘤菌,AM或Rhizobial-AM双共生中的大豆根中差异表达的基因的转录概况,与对照(未征收)根中的那些相比。接种后,大豆植物在玻璃盆中种植了6周;此后使用寡核苷酸微阵列分析其根部转录om。在四种处理中,具有双共生的植物中的根瘤结节和宿主植物生长最高。我们观察到,187,441和548个宿主基因的表达分别上调,119,1439和1,298个宿主基因分别在根瘤菌,AM和双共生期间下调。 34个宿主基因的表达在三种共生中的每一个中都有上调。这些34个基因编码了几种膜转运蛋白,1型金属硫蛋白和MYB和BHLH系列中的转录因子。我们确定了在双共生期间特别有调节的56个宿主基因。这些基因编码了几种Nodulin蛋白,苯丙醇丙二醇相关蛋白质和碳酸酐酶。由AM真菌殖民化的上调Nodulin基因可能导致观察到的根瘤数量和宿主植物生长的增加。在AM共生期间,一些其他Nodulin基因在amsyniosis期间特别是下调。基于上述结果,我们表明AM真菌定植的贡献对于大豆生物N-2固定和宿主生长的贡献对于具有Rhizobial-AM双重共生。

著录项

  • 来源
    《Journal of Plant Research》 |2019年第4期|共28页
  • 作者单位

    Chiba Univ Grad Sch Hort 648 Matsudo Matsudo Chiba 2718510 Japan;

    Chiba Univ Grad Sch Hort 648 Matsudo Matsudo Chiba 2718510 Japan;

    JA ZEN NOH Res &

    Dev Ctr 4-18-1 Higashiyawata Hiratsuka Kanagawa 2540016 Japan;

    Chiba Univ Grad Sch Hort 648 Matsudo Matsudo Chiba 2718510 Japan;

    Chiba Univ Grad Sch Hort 648 Matsudo Matsudo Chiba 2718510 Japan;

    Chiba Univ Grad Sch Hort 648 Matsudo Matsudo Chiba 2718510 Japan;

    RIKEN Ctr Sustainable Resource Sci Tsurumi Ku 1-7-22 Suehiro Cho Yokohama Kanagawa 2300045 Japan;

    RIKEN Ctr Sustainable Resource Sci Tsurumi Ku 1-7-22 Suehiro Cho Yokohama Kanagawa 2300045 Japan;

    RIKEN Ctr Sustainable Resource Sci Tsurumi Ku 1-7-22 Suehiro Cho Yokohama Kanagawa 2300045 Japan;

    Natl Canc Ctr Div Canc Genom Res Inst Chuo Ku Tokyo 1040045 Japan;

    RIKEN Ctr Sustainable Resource Sci Tsurumi Ku 1-7-22 Suehiro Cho Yokohama Kanagawa 2300045 Japan;

    RIKEN Ctr Sustainable Resource Sci Tsurumi Ku 1-7-22 Suehiro Cho Yokohama Kanagawa 2300045 Japan;

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

    Arbuscular mycorrhizal fungi; Dual symbiosis; Glycine max; Rhizobia; Soybean; Transcriptome;

    机译:丛枝菌根真菌;双共生;甘氨酸最大;根茎;大豆;转录组;
  • 入库时间 2022-08-20 09:59:22

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