拟南芥5'-3' mRNA衰变通路调控植物昼夜节律网络

Daniel A Careno, Soledad Perez Santangelo, Richard C Macknight, Marcelo J Yanovsky
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引用次数: 4

摘要

昼夜节律使生物体能够预测和调整其生理以适应周期性的环境变化。这些节律是由生物钟控制的,生物钟由一组生物钟基因组成,这些生物钟基因相互调节彼此的表达。信使RNA (mRNA)水平的昼夜振荡需要调节mRNA的产生和降解。虽然从蓝藻到人类已经很好地表征了控制时钟功能的转录因子,但控制mRNA衰变的因子的作用在很大程度上是未知的。在这里,我们发现sm样蛋白1 (LSM1)和外核糖核酸酶4 (XRN4)的突变,5'-3' mRNA衰变途径的组成部分,改变了拟南芥的时钟功能。我们发现lsm1和xrn4突变体在时钟基因表达方面表现出长周期表型。在xrn4中,这些昼夜节律缺陷与几个核心时钟基因的昼夜节律表达阶段的变化有关,但与总体mRNA水平无关。然后,我们使用无创转录组全mRNA稳定性分析来鉴定受XRN4调控的基因和途径。在xrn4突变体中受转录和转录后水平影响的基因中,我们发现与生长素、乙烯和干旱恢复有关的基因富集。虽然在xrn4突变体中,控制时钟速度的几个辅助时钟基因的mrna稳定下来,但规范的核心时钟基因没有观察到大的影响。我们的研究结果表明,5'-3' mRNA衰减途径构成了昼夜节律基因网络的一个新的转录后调控层,它可能通过对几个辅助基因和一些核心时钟基因的mRNA稳定性的小影响而起作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The 5'-3' mRNA Decay Pathway Modulates the Plant Circadian Network in Arabidopsis.

Circadian rhythms enable organisms to anticipate and adjust their physiology to periodic environmental changes. These rhythms are controlled by biological clocks that consist of a set of clock genes that regulate each other's expression. Circadian oscillations in messenger RNA (mRNA) levels require the regulation of mRNA production and degradation. While transcription factors controlling clock function have been well characterized from cyanobacteria to humans, the role of factors controlling mRNA decay is largely unknown. Here, we show that mutations in SM-LIKE PROTEIN 1 (LSM1) and exoribonucleases 4 (XRN4), components of the 5'-3' mRNA decay pathway, alter clock function in Arabidopsis. We found that lsm1 and xrn4 mutants display long-period phenotypes for clock gene expression. In xrn4, these circadian defects were associated with changes in circadian phases of expression, but not overall mRNA levels, of several core-clock genes. We then used noninvasive transcriptome-wide mRNA stability analysis to identify genes and pathways regulated by XRN4. Among genes affected in the xrn4 mutant at the transcriptional and posttranscriptional level, we found an enrichment in genes involved in auxin, ethylene and drought recovery. Large effects were not observed for canonical core-clock genes, although the mRNAs of several auxiliary clock genes that control the pace of the clock were stabilized in xrn4 mutants. Our results establish that the 5'-3' mRNA decay pathway constitutes a novel posttranscriptional regulatory layer of the circadian gene network, which probably acts through a combination of small effects on mRNA stability of several auxiliary and some core-clock genes.

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