Institute of Integrative Biology, University of Liverpool, Liverpool, United Kingdom.
Sainsbury Laboratory, University of Cambridge, Cambridge, United Kingdom.
Elife. 2018 Apr 26;7:e31700. doi: 10.7554/eLife.31700.
The circadian clock orchestrates gene regulation across the day/night cycle. Although a multiple feedback loop circuit has been shown to generate the 24-hr rhythm, it remains unclear how robust the clock is in individual cells, or how clock timing is coordinated across the plant. Here we examine clock activity at the single cell level across seedlings over several days under constant environmental conditions. Our data reveal robust single cell oscillations, albeit desynchronised. In particular, we observe two waves of clock activity; one going down, and one up the root. We also find evidence of cell-to-cell coupling of the clock, especially in the root tip. A simple model shows that cell-to-cell coupling and our measured period differences between cells can generate the observed waves. Our results reveal the spatial structure of the plant clock and suggest that unlike the centralised mammalian clock, the clock has multiple coordination points.
生物钟在日夜周期中协调基因调控。尽管已经表明,一个多重反馈回路电路可以产生 24 小时的节律,但仍不清楚生物钟在单个细胞中的稳定性如何,或者生物钟在整个植物中的时间如何协调。在这里,我们在恒定的环境条件下,在数天内检查多个幼苗中的单个细胞的时钟活动。我们的数据显示,尽管存在不同步,但单个细胞的振荡仍然很强烈。特别是,我们观察到时钟活动有两个波,一个在根部向下,一个向上。我们还发现了时钟细胞间耦合的证据,特别是在根尖。一个简单的模型表明,细胞间的耦合和我们测量的细胞间周期差异可以产生观察到的波。我们的结果揭示了植物生物钟的空间结构,并表明与集中式哺乳动物生物钟不同,生物钟有多个协调点。