首页> 美国卫生研究院文献>OMICS : a Journal of Integrative Biology >Harnessing Next Generation Sequencing in Climate Change: RNA-Seq Analysis of Heat Stress-Responsive Genes in Wheat (Triticum aestivum L.)
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Harnessing Next Generation Sequencing in Climate Change: RNA-Seq Analysis of Heat Stress-Responsive Genes in Wheat (Triticum aestivum L.)

机译:利用下一代气候变化测序技术:小麦(Triticum aestivum L.)小麦热应激反应基因的RNA-Seq分析

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摘要

Wheat is a staple food worldwide and provides 40% of the calories in the diet. Climate change and global warming pose a threat to wheat production, however, and demand a deeper understanding of how heat stress might impact wheat production and wheat biology. However, it is difficult to identify novel heat stress associated genes when the genomic information is not available. Wheat has a very large and complex genome that is about 37 times the size of the rice genome. The present study sequenced the whole transcriptome of the wheat cv. HD2329 at the flowering stage, under control (22° ± 3°C) and heat stress (42°C, 2 h) conditions using Illumina HiSeq and Roche GS-FLX 454 platforms. We assembled more than 26.3 and 25.6 million high-quality reads from the control and HS-treated tissues transcriptome sequences respectively. About 76,556 (control) and 54,033 (HS-treated) contigs were assembled and annotated de novo using different assemblers and a total of 21,529 unigenes were obtained. Gene expression profile showed significant differential expression of 1525 transcripts under heat stress, of which 27 transcripts showed very high (>10) fold upregulation. Cellular processes such as metabolic processes, protein phosphorylation, oxidations-reductions, among others were highly influenced by heat stress. In summary, these observations significantly enrich the transcript dataset of wheat available on public domain and show a de novo approach to discover the heat-responsive transcripts of wheat, which can accelerate the progress of wheat stress-genomics as well as the course of wheat breeding programs in the era of climate change.
机译:小麦是世界范围内的主食,并提供饮食中40%的卡路里。然而,气候变化和全球变暖对小麦生产构成威胁,因此需要更深入地了解热应激如何影响小麦生产和小麦生物学。但是,当无法获得基因组信息时,很难鉴定出与热应激相关的新基因。小麦的基因组非常大而复杂,大约是水稻基因组大小的37倍。本研究对小麦简历的整个转录组进行了测序。 HD2329在开花期,使用Illumina HiSeq和Roche GS-FLX 454平台在控制(22°±3°C)和热胁迫(42°C,2°h)条件下进行。我们分别从对照和HS处理的组织转录组序列中组装了超过26.3和2560万个高质量读段。组装了约76,556(对照)和54,033(经HS处理)的重叠群,并使用不同的组装器从头开始注释,共获得21,529个单基因。基因表达谱显示在热胁迫下1525个转录物的显着差异表达,其中27个转录物显示非常高(> 10)倍的上调。细胞代谢过程,蛋白质磷酸化,氧化还原等过程受热应激的影响很大。总之,这些观察结果显着丰富了公共领域中可用的小麦转录本数据集,并显示了从头开始的方法来发现小麦的热响应转录本,这可以加速小麦胁迫基因组学的进展以及小麦育种的进程气候变化时代的计划。

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