Unruh Benjamin A, Weidemann Douglas E, Kojima Shihoko
Department of Biological Sciences, Fralin Life Sciences Institute, Virginia Tech, Blacksburg, VA USA.
bioRxiv. 2023 Jul 26:2023.07.26.550672. doi: 10.1101/2023.07.26.550672.
Circadian RNA expression is essential to ultimately regulate a plethora of downstream rhythmic biochemical, physiological, and behavioral processes. Both transcriptional and post-transcriptional mechanisms are considered important to drive rhythmic RNA expression, however, the extent to which each regulatory process contributes to the rhythmic RNA expression remains controversial. To systematically address this, we monitored RNA dynamics using metabolic RNA labeling technology during a circadian cycle in mouse fibroblasts. We find that rhythmic RNA synthesis is the primary contributor of 24 hr RNA rhythms, while rhythmic degradation is more important for 12 hr RNA rhythms. These rhythms were predominantly regulated by and/or the core clock mechanism, and interplay between rhythmic synthesis and degradation has a significant impact in shaping rhythmic RNA expression patterns. Interestingly, core clock RNAs are regulated by multiple rhythmic processes and have the highest amplitude of synthesis and degradation, presumably critical to sustain robust rhythmicity of cell-autonomous circadian rhythms. Our study yields invaluable insights into the temporal dynamics of both 24 hr and 12 hr RNA rhythms in mouse fibroblasts.
昼夜节律性RNA表达对于最终调节大量下游节律性生化、生理和行为过程至关重要。转录和转录后机制都被认为对驱动节律性RNA表达很重要,然而,每个调节过程对节律性RNA表达的贡献程度仍存在争议。为了系统地解决这个问题,我们在小鼠成纤维细胞的一个昼夜周期中使用代谢性RNA标记技术监测了RNA动态变化。我们发现,节律性RNA合成是24小时RNA节律的主要贡献者,而节律性降解对12小时RNA节律更为重要。这些节律主要受 和/或核心生物钟机制调控,节律性合成与降解之间的相互作用对塑造节律性RNA表达模式有显著影响。有趣的是,核心生物钟RNA受多种节律过程调控,其合成和降解的幅度最高,这可能对维持细胞自主昼夜节律的稳健性至关重要。我们的研究为小鼠成纤维细胞中24小时和12小时RNA节律的时间动态变化提供了宝贵的见解。