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综合转录组分析揭示了番茄植物对基于烟草脆裂病毒的基因沉默载体的反应。

Comprehensive transcriptome analyses reveal tomato plant responses to tobacco rattle virus-based gene silencing vectors.

机构信息

Boyce Thompson Institute, Cornell University, Ithaca, NY, 14853, USA.

Department of Molecular Genetics, The Ohio State University, Columbus, OH, 43210, USA.

出版信息

Sci Rep. 2017 Aug 29;7(1):9771. doi: 10.1038/s41598-017-10143-1.

Abstract

In plants, virus-induced gene silencing (VIGS) is a popular tool for functional genomic studies or rapidly assessing individual gene functions. However, molecular details regarding plant responses to viral vectors remain elusive, which may complicate experimental designs and data interpretation. To this end, we documented whole transcriptome changes of tomato elicited by the application of the most widely used tobacco rattle virus (TRV)-based vectors, using comprehensive genome-wide analyses. Our data illustrated multiple biological processes with functional implications, including (1) the enhanced activity of miR167 in guiding the cleavage of an auxin response factor; (2) reduced accumulation of phased secondary small interfering RNAs from two genomic loci; (3) altered expression of ~500 protein-coding transcripts; and (4) twenty long noncoding RNAs specifically responsive to TRV vectors. Importantly, we unraveled large-scale changes in mRNA alternative splicing patterns. These observations will facilitate future application of VIGS vectors for functional studies benefiting the plant research community and help deepen the understanding of plant-virus interactions.

摘要

在植物中,病毒诱导的基因沉默 (VIGS) 是功能基因组研究或快速评估单个基因功能的常用工具。然而,关于植物对病毒载体的反应的分子细节仍然难以捉摸,这可能会使实验设计和数据解释复杂化。为此,我们使用全面的全基因组分析,记录了番茄对最广泛使用的烟草脆裂病毒 (TRV) 载体应用的全转录组变化。我们的数据说明了具有功能意义的多个生物学过程,包括 (1) miR167 在指导生长素反应因子切割中的活性增强;(2) 来自两个基因组位点的相分期次级小干扰 RNA 的积累减少;(3) ~500 个蛋白质编码转录物的表达改变;和 (4) 二十个对 TRV 载体有特异性反应的长非编码 RNA。重要的是,我们揭示了 mRNA 可变剪接模式的大规模变化。这些观察结果将有助于未来 VIGS 载体在功能研究中的应用,使植物研究界受益,并有助于加深对植物-病毒相互作用的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/837b/5575331/642cbea114fd/41598_2017_10143_Fig1_HTML.jpg

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