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联合 RNA-Seq 和 miRNA 分析揭示调控豌豆冠层厚度的分子机制。

Joint RNA-Seq and miRNA Profiling Analyses to Reveal Molecular Mechanisms in Regulating Thickness of Pod Canopy in .

机构信息

College of Agronomy and Biotechnology, Southwest University, Chongqing 400715, China.

Academy of Agricultural Sciences, Southwest University, Chongqing 400715, China.

出版信息

Genes (Basel). 2019 Aug 5;10(8):591. doi: 10.3390/genes10080591.

Abstract

Oilseed rape () is the second largest oilseed crop worldwide. As an architecture component of , thickness of pod canopy (TPC) plays an important role in yield formation, especially under high-density cultivation conditions. However, the mechanisms underlying the regulation of TPC remain unclear. RNA and microRNA (miRNA) profiling of two groups of lines with significantly different TPC at the bolting with a tiny bud stage revealed differential expressions of numerous genes involved in nitrogen-related pathways. Expression of several nitrogen-related response genes, including , , , , , , , and , was dramatically changed in the thick TPC lines compared to those in the thin TPC lines. Differentially expressed miRNAs also included many involved in nitrogen-related pathways. Expression of most target genes was negatively associated with corresponding miRNAs, such as miR159, miR6029, and miR827. In addition, 12 (including miR319, miR845, and miR158) differentially expressed miRNAs between two plant tissues sampled (stem apex and flower bud) were identified, implying that they might have roles in determining overall plant architecture. These results suggest that nitrogen signaling may play a pivotal role in regulating TPC in .

摘要

油菜()是全球第二大油料作物。作为作物结构的组成部分,角果层厚度(TPC)在产量形成中起着重要作用,尤其是在高密度种植条件下。然而,TPC 调节的机制尚不清楚。在现蕾期小芽阶段,对两组 TPC 差异显著的 品系进行 RNA 和 microRNA(miRNA)分析,揭示了许多参与氮相关途径的基因的差异表达。与薄 TPC 系相比,几个与氮相关的响应基因,包括、、、、、、和,在厚 TPC 系中的表达显著改变。差异表达的 miRNAs 也包括许多与氮相关的途径。大多数靶基因的表达与相应的 miRNAs 呈负相关,如 miR159、miR6029 和 miR827。此外,在两个采样植物组织(茎尖和花蕾)之间鉴定出了 12 个(包括 miR319、miR845 和 miR158)差异表达的 miRNAs,这表明它们可能在决定整体植物结构中起作用。这些结果表明,氮信号可能在油菜 TPC 调节中起关键作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fcf8/6722711/c7564d5e11e5/genes-10-00591-g001.jpg

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