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对感染假单胞菌的拟南芥进行高通量RNA测序揭示了隐藏的转录组复杂性和新的剪接变体。

High-throughput RNA sequencing of pseudomonas-infected Arabidopsis reveals hidden transcriptome complexity and novel splice variants.

作者信息

Howard Brian E, Hu Qiwen, Babaoglu Ahmet Can, Chandra Manan, Borghi Monica, Tan Xiaoping, He Luyan, Winter-Sederoff Heike, Gassmann Walter, Veronese Paola, Heber Steffen

机构信息

Department of Computer Science, North Carolina State University, Raleigh, North Carolina, United States of America.

出版信息

PLoS One. 2013 Oct 1;8(10):e74183. doi: 10.1371/journal.pone.0074183. eCollection 2013.

DOI:10.1371/journal.pone.0074183
PMID:24098335
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3788074/
Abstract

We report the results of a genome-wide analysis of transcription in Arabidopsis thaliana after treatment with Pseudomonas syringae pathovar tomato. Our time course RNA-Seq experiment uses over 500 million read pairs to provide a detailed characterization of the response to infection in both susceptible and resistant hosts. The set of observed differentially expressed genes is consistent with previous studies, confirming and extending existing findings about genes likely to play an important role in the defense response to Pseudomonas syringae. The high coverage of the Arabidopsis transcriptome resulted in the discovery of a surprisingly large number of alternative splicing (AS) events--more than 44% of multi-exon genes showed evidence for novel AS in at least one of the probed conditions. This demonstrates that the Arabidopsis transcriptome annotation is still highly incomplete, and that AS events are more abundant than expected. To further refine our predictions, we identified genes with statistically significant changes in the ratios of alternative isoforms between treatments. This set includes several genes previously known to be alternatively spliced or expressed during the defense response, and it may serve as a pool of candidate genes for regulated alternative splicing with possible biological relevance for the defense response against invasive pathogens.

摘要

我们报告了用丁香假单胞菌番茄致病变种处理拟南芥后全基因组转录分析的结果。我们的时间进程RNA测序实验使用了超过5亿对读数,以详细表征易感和抗性宿主对感染的反应。观察到的差异表达基因集与先前的研究一致,证实并扩展了关于可能在对丁香假单胞菌的防御反应中起重要作用的基因的现有发现。拟南芥转录组的高覆盖率导致发现了数量惊人的可变剪接(AS)事件——超过44%的多外显子基因在至少一种检测条件下显示出新型AS的证据。这表明拟南芥转录组注释仍然非常不完整,并且AS事件比预期的更为丰富。为了进一步完善我们的预测,我们鉴定了在处理之间可变异构体比例有统计学显著变化的基因。这一组包括几个先前已知在防御反应期间发生可变剪接或表达的基因,并且它可以作为受调控的可变剪接候选基因库,这些可变剪接可能与针对入侵病原体的防御反应具有生物学相关性。

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A role for nonsense-mediated mRNA decay in plants: pathogen responses are induced in Arabidopsis thaliana NMD mutants.无义介导的 mRNA 降解在植物中的作用:拟南芥 NMD 突变体中诱导了病原体反应。
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The Arabidopsis Information Resource (TAIR): improved gene annotation and new tools.拟南芥信息资源(TAIR):改进的基因注释和新工具。
病原菌效应蛋白HaRxL10劫持生物钟组件CHE,以扰乱植物发育和免疫。
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Early changes in microRNA expression in Arabidopsis plants infected with the fungal pathogen Fusarium graminearum.感染真菌病原体禾谷镰刀菌的拟南芥植株中微小RNA表达的早期变化。
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