Rivière Quentin, Raskin Virginie, de Melo Romário, Boutet Stéphanie, Corso Massimiliano, Defrance Matthieu, Webb Alex A R, Verbruggen Nathalie, Anoman Armand D
Laboratory of Plant Physiology and Molecular Genetics Université Libre de Bruxelles Brussels Belgium.
Biology Centre Czech Academy of Sciences, Institute of Plant Molecular Biology České Budějovice Czech Republic.
Plant Direct. 2024 Aug 26;8(8):e70001. doi: 10.1002/pld3.70001. eCollection 2024 Aug.
Light/dark (LD) cycles are responsible for oscillations in gene expression, which modulate several aspects of plant physiology. Those oscillations can persist under constant conditions due to regulation by the circadian oscillator. The response of the transcriptome to light regimes is dynamic and allows plants to adapt rapidly to changing environmental conditions. We compared the transcriptome of Arabidopsis under LD and constant light (LL) for 3 days and identified different gene co-expression networks in the two light regimes. Our studies yielded unforeseen insights into circadian regulation. Intuitively, we anticipated that gene clusters regulated by the circadian oscillator would display oscillations under LD cycles. However, we found transcripts encoding components of the flavonoid metabolism pathway that were rhythmic in LL but not in LD. We also discovered that the expressions of many stress-related genes were significantly increased during the dark period in LD relative to the subjective night in LL, whereas the expression of these genes in the light period was similar. The nocturnal pattern of these stress-related gene expressions suggested a form of "skotoprotection." The transcriptomics data were made available in a web application named , which we believe will be a useful tool to contribute to a better understanding of the impact of light regimes on plants.
光/暗(LD)循环负责基因表达的振荡,这种振荡调节植物生理学的多个方面。由于昼夜节律振荡器的调节,这些振荡在恒定条件下仍可持续。转录组对光照模式的反应是动态的,使植物能够迅速适应不断变化的环境条件。我们比较了拟南芥在LD和持续光照(LL)条件下3天的转录组,并在两种光照模式下鉴定出不同的基因共表达网络。我们的研究对昼夜节律调节产生了意想不到的见解。直观地说,我们预计受昼夜节律振荡器调节的基因簇在LD循环下会表现出振荡。然而,我们发现编码类黄酮代谢途径成分的转录本在LL中有节律,但在LD中没有。我们还发现,许多与胁迫相关的基因在LD的黑暗期相对于LL的主观夜间显著增加,而这些基因在光照期的表达相似。这些与胁迫相关的基因表达的夜间模式表明了一种“避光保护”形式。转录组学数据可在一个名为 的网络应用程序中获取,我们相信这将是一个有助于更好地理解光照模式对植物影响的有用工具。