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本文引用的文献

1
SKIP is a component of the spliceosome linking alternative splicing and the circadian clock in Arabidopsis.SKIP 是剪接体的一个组成部分,连接拟南芥中的可变剪接和生物钟。
Plant Cell. 2012 Aug;24(8):3278-95. doi: 10.1105/tpc.112.100081. Epub 2012 Aug 31.
2
Unproductive alternative splicing and nonsense mRNAs: a widespread phenomenon among plant circadian clock genes.无功能的可变剪接和无义 mRNA:植物生物钟基因中的普遍现象。
Biol Direct. 2012 Jul 2;7:20. doi: 10.1186/1745-6150-7-20.
3
A self-regulatory circuit of CIRCADIAN CLOCK-ASSOCIATED1 underlies the circadian clock regulation of temperature responses in Arabidopsis.生物钟相关蛋白 1 的自我调节电路是拟南芥温度响应的生物钟调节的基础。
Plant Cell. 2012 Jun;24(6):2427-42. doi: 10.1105/tpc.112.098723. Epub 2012 Jun 19.
4
Alternative splicing mediates responses of the Arabidopsis circadian clock to temperature changes.可变剪接介导拟南芥生物钟对温度变化的响应。
Plant Cell. 2012 Mar;24(3):961-81. doi: 10.1105/tpc.111.093948. Epub 2012 Mar 9.
5
Mapping the core of the Arabidopsis circadian clock defines the network structure of the oscillator.解析生物钟核心,揭示拟南芥生物钟振荡器网络结构。
Science. 2012 Apr 6;336(6077):75-9. doi: 10.1126/science.1219075. Epub 2012 Mar 8.
6
Transcriptome survey reveals increased complexity of the alternative splicing landscape in Arabidopsis.转录组研究揭示拟南芥可变剪接图谱复杂性增加。
Genome Res. 2012 Jun;22(6):1184-95. doi: 10.1101/gr.134106.111. Epub 2012 Mar 5.
7
Arabidopsis circadian clock protein, TOC1, is a DNA-binding transcription factor.拟南芥生物钟蛋白 TOC1 是一种 DNA 结合转录因子。
Proc Natl Acad Sci U S A. 2012 Feb 21;109(8):3167-72. doi: 10.1073/pnas.1200355109. Epub 2012 Feb 6.
8
Alternative splicing and nonsense-mediated decay modulate expression of important regulatory genes in Arabidopsis.可变剪接和无义介导的 mRNA 降解调控拟南芥中重要调控基因的表达。
Nucleic Acids Res. 2012 Mar;40(6):2454-69. doi: 10.1093/nar/gkr932. Epub 2011 Nov 29.
9
Molecular mechanisms underlying the Arabidopsis circadian clock.拟南芥生物钟的分子机制。
Plant Cell Physiol. 2011 Oct;52(10):1709-18. doi: 10.1093/pcp/pcr118. Epub 2011 Aug 25.
10
RNA-based regulation in the plant circadian clock.基于 RNA 的植物生物钟调控。
Trends Plant Sci. 2011 Oct;16(10):517-23. doi: 10.1016/j.tplants.2011.06.002. Epub 2011 Jul 23.

拟南芥剪接体时间守护者基因座 1 突变导致生物钟缺陷。

Mutation of Arabidopsis spliceosomal timekeeper locus1 causes circadian clock defects.

机构信息

Department of Plant Biology, College of Biological Sciences, University of California, Davis, California 95616, USA.

出版信息

Plant Cell. 2012 Oct;24(10):4066-82. doi: 10.1105/tpc.112.104828. Epub 2012 Oct 30.

DOI:10.1105/tpc.112.104828
PMID:23110899
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3517236/
Abstract

The circadian clock plays a crucial role in coordinating plant metabolic and physiological functions with predictable environmental variables, such as dusk and dawn, while also modulating responses to biotic and abiotic challenges. Much of the initial characterization of the circadian system has focused on transcriptional initiation, but it is now apparent that considerable regulation is exerted after this key regulatory step. Transcript processing, protein stability, and cofactor availability have all been reported to influence circadian rhythms in a variety of species. We used a genetic screen to identify a mutation within a putative RNA binding protein (spliceosomal timekeeper locus1 [STIPL1]) that induces a long circadian period phenotype under constant conditions. STIPL1 is a homolog of the spliceosomal proteins TFP11 (Homo sapiens) and Ntr1p (Saccharomyces cerevisiae) involved in spliceosome disassembly. Analysis of general and alternative splicing using a high-resolution RT-PCR system revealed that mutation of this protein causes less efficient splicing of most but not all of the introns analyzed. In particular, the altered accumulation of circadian-associated transcripts may contribute to the observed mutant phenotype. Interestingly, mutation of a close homolog of STIPL1, STIP-LIKE2, does not cause a circadian phenotype, which suggests divergence in function between these family members. Our work highlights the importance of posttranscriptional control within the clock mechanism.

摘要

生物钟在协调植物代谢和生理功能与可预测的环境变量(如黄昏和黎明)方面起着至关重要的作用,同时也调节对生物和非生物挑战的反应。最初对生物钟系统的描述主要集中在转录起始上,但现在很明显,在这个关键的调节步骤之后,还存在大量的调节。已经报道了转录本加工、蛋白质稳定性和辅助因子可用性都会影响多种物种的生物钟节律。我们使用遗传筛选鉴定出一个假定的 RNA 结合蛋白(剪接体定时基因 1 [STIPL1])中的突变,该突变在恒定条件下诱导长的生物钟周期表型。STIPL1 是剪接体蛋白 TFP11(人类)和 Ntr1p(酿酒酵母)的同源物,参与剪接体的解体。使用高分辨率 RT-PCR 系统分析一般和选择性剪接表明,该蛋白的突变导致大多数(但不是所有)分析的内含子的剪接效率降低。特别是,生物钟相关转录本的积累变化可能导致观察到的突变表型。有趣的是,STIPL1 的密切同源物 STIP-LIKE2 的突变不会导致生物钟表型,这表明这些家族成员的功能存在分歧。我们的工作强调了时钟机制中转录后控制的重要性。