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植物对高温的响应:从前体 mRNA 可变剪接的角度来看。

Plant responses to high temperature: a view from pre-mRNA alternative splicing.

机构信息

College of Life Sciences, Nanjing Normal University, Nanjing, 210023, China.

出版信息

Plant Mol Biol. 2021 Apr;105(6):575-583. doi: 10.1007/s11103-021-01117-z. Epub 2021 Feb 7.

DOI:10.1007/s11103-021-01117-z
PMID:33550520
Abstract

This review focused on the recent breakthroughs in plant high temperature responses from an alternative splicing angle. With the inevitable global warming, high temperature triggers plants to change their growth and developmental programs for adapting temperature increase. In the past decades, the signaling mechanisms from plant thermo-sensing to downstream transcriptional cascades have been extensively studied. Plenty of elegant review papers have summarized these breakthroughs from signal transduction to cross-talk within plant hormones and environmental cues. Precursor messenger RNA (pre-mRNA) splicing enables plants to produce a series of functional un-related proteins and thus enhances the regulation flexibility. Plants take advantage of this strategy to modulate their proteome diversity under high ambient temperature and elicit developmental plasticity. In this review, we particularly focus on pre-mRNA splicing regulation underlying plant high temperature responses, and will shed new light on the understanding of post-transcriptional regulation on plant growth and development.

摘要

本篇综述从可变剪接的角度聚焦于植物高温响应的最新突破。随着全球变暖不可避免,高温促使植物改变其生长和发育程序以适应温度升高。在过去的几十年中,植物热感应到下游转录级联的信号转导机制已被广泛研究。大量精美的综述文章总结了这些从信号转导到植物激素和环境线索之间的串扰的突破。前体信使 RNA(pre-mRNA)剪接使植物能够产生一系列功能上无关的蛋白质,从而增强了调控的灵活性。植物利用这种策略在高环境温度下调节其蛋白质组多样性,并引发发育可塑性。在本综述中,我们特别关注植物高温响应的 pre-mRNA 剪接调控,并将为理解植物生长和发育的转录后调控提供新的思路。

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Plant responses to high temperature: a view from pre-mRNA alternative splicing.植物对高温的响应:从前体 mRNA 可变剪接的角度来看。
Plant Mol Biol. 2021 Apr;105(6):575-583. doi: 10.1007/s11103-021-01117-z. Epub 2021 Feb 7.
2
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本文引用的文献

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A prion-like domain in ELF3 functions as a thermosensor in Arabidopsis.ELF3 中的类朊结构域在拟南芥中作为热传感器发挥作用。
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A Conserved Kinase-Based Body-Temperature Sensor Globally Controls Alternative Splicing and Gene Expression.一种基于保守激酶的体温传感器全局控制可变剪接和基因表达。
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Alternative splicing in ABA signaling during seed germination.种子萌发过程中脱落酸信号传导中的可变剪接
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Plant AFC2 kinase desensitizes thermomorphogenesis through modulation of alternative splicing.植物AFC2激酶通过调节可变剪接使热形态发生脱敏。
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Genome-wide differences in gene expression and alternative splicing in developing embryo and endosperm, and between F1 hybrids and their parental pure lines in sorghum.在玉米的胚胎和胚乳发育过程中、F1 杂种与其亲本纯系之间,在基因表达和选择性剪接方面存在全基因组差异。
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Phosphoproteomic Analysis of Thermomorphogenic Responses in .植物热形态建成响应的磷酸化蛋白质组学分析 (原文不完整,这里补充了“植物”使句子更通顺,你可根据实际情况调整)
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Plants (Basel). 2021 Aug 11;10(8):1647. doi: 10.3390/plants10081647.
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