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可变剪接在维持水稻矿质养分稳态中起着关键作用()。

Alternative Splicing Plays a Critical Role in Maintaining Mineral Nutrient Homeostasis in Rice ().

机构信息

College of Life Sciences, Nanjing Agricultural University, Nanjing, Jiangsu 210095, P.R. China.

ARC Centre of Excellence in Plant Energy Biology, Department of Animal, Plant, and Soil Sciences, School of Life Sciences, La Trobe University, Victoria 3086, Australia.

出版信息

Plant Cell. 2018 Oct;30(10):2267-2285. doi: 10.1105/tpc.18.00051. Epub 2018 Sep 25.

Abstract

Alternative splicing (AS) of pre-mRNAs promotes transcriptome and proteome diversity and plays important roles in a wide range of biological processes. However, the role of AS in maintaining mineral nutrient homeostasis in plants is largely unknown. To clarify this role, we obtained whole transcriptome RNA sequencing data from rice () roots grown in the presence or absence of several mineral nutrients (Fe, Zn, Cu, Mn, and P). Our systematic analysis revealed 13,291 alternatively spliced genes, representing ∼53.3% of the multiexon genes in the rice genome. As the overlap between differentially expressed genes and differentially alternatively spliced genes is small, a molecular understanding of the plant's response to mineral deficiency is limited by analyzing differentially expressed genes alone. We found that the targets of AS are highly nutrient-specific. To verify the role of AS in mineral nutrition, we characterized mutants in genes encoding Ser/Arg (SR) proteins that function in AS. We identified several SR proteins as critical regulators of Zn, Mn, and P nutrition and showed that three SR protein-encoding genes regulate P uptake and remobilization between leaves and shoots of rice, demonstrating that AS has a key role in regulating mineral nutrient homeostasis in rice.

摘要

可变剪接(AS)的 pre-mRNAs 促进转录组和蛋白质组的多样性,并在广泛的生物学过程中发挥重要作用。然而,AS 在维持植物矿质养分稳态中的作用在很大程度上是未知的。为了阐明这一作用,我们从生长在存在或不存在几种矿质养分(Fe、Zn、Cu、Mn 和 P)的水稻()根中获得了全转录组 RNA 测序数据。我们的系统分析揭示了 13291 个可变剪接基因,代表水稻基因组中多外显子基因的约 53.3%。由于差异表达基因和差异可变剪接基因之间的重叠很小,仅通过分析差异表达基因来理解植物对矿质缺乏的反应是有限的。我们发现,AS 的靶标高度具有养分特异性。为了验证 AS 在矿质营养中的作用,我们对编码在 AS 中起作用的丝氨酸/精氨酸(SR)蛋白的基因的突变体进行了特征描述。我们鉴定出几种 SR 蛋白是 Zn、Mn 和 P 营养的关键调节剂,并表明三个 SR 蛋白编码基因调节水稻叶片和茎之间的 P 吸收和再动员,表明 AS 在调节水稻矿质养分稳态中起着关键作用。

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