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首页> 外文期刊>Nucleic acids research >Native elongation transcript sequencing reveals temperature dependent dynamics of nascent RNAPII transcription in Arabidopsis
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Native elongation transcript sequencing reveals temperature dependent dynamics of nascent RNAPII transcription in Arabidopsis

机译:本机伸长率转录序列显示拟南芥中新生RNAPII转录的温度依赖性动态

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摘要

Temperature profoundly affects the kinetics of biochemical reactions, yet how large molecular complexes such as the transcription machinery accommodate changing temperatures to maintain cellular function is poorly understood. Here, we developed plant native elongating transcripts sequencing (plaNET-seq) to profile genome-wide nascent RNA polymerase II (RNAPII) transcription during the cold-response of Arabidopsis thaliana with single-nucleotide resolution. Combined with temporal resolution, these data revealed transient genome-wide reprogramming of nascent RNAPII transcription during cold, including characteristics of RNAPII elongation and thousands of non-coding transcripts connected to gene expression. Our results suggest a role for promoter–proximal RNAPII stalling in predisposing genes for transcriptional activation during plant–environment interactions. At gene 3′-ends, cold initially facilitated transcriptional termination by limiting the distance of read-through transcription. Within gene bodies, cold reduced the kinetics of co-transcriptional splicing leading to increased intragenic stalling. Our data resolved multiple distinct mechanisms by which temperature transiently altered the dynamics of nascent RNAPII transcription and associated RNA processing, illustrating potential biotechnological solutions and future focus areas to promote food security in the context of a changing climate.
机译:温度深刻影响生化反应的动力学,但是大量分子复合物如转录机械的适应温度变化以维持蜂窝功能较差。在这里,我们开发了植物本地伸长的转录物测序(Planet-SEQ),以在拟南芥拟南芥的冷响应期间概况基因组的新生RNA聚合酶II(RNAPII)转录,具有单核苷酸分辨率。结合时间分辨率,这些数据揭示了寒冷期间新生RNAPII转录的瞬时基因组重新编程,包括RNAPII伸长率的特征和与基因表达的数千种非编码转录物。我们的研究结果表明,在植物环境相互作用期间,在预测转录激活中的促进基因中的启动子 - 近端RNAPII的作用。在基因3'-末端,通过限制读取转录的距离,冷启动最初促进的转录终止。在基因体内,冷降低了共转录剪接的动力学,导致腺体停滞增加。我们的数据解决了多种不同的机制,通过这种多种机制,温度瞬时改变了新生RNAPII转录和相关的RNA处理的动态,说明了潜在的生物技术解决方案和未来的焦点领域,以促进气候变化的背景下促进粮食安全。

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