Section of Cell and Developmental Biology, Division of Biological Sciences, Center for Chronobiology, 9500 Gilman Drive, University of California San Diego, La Jolla, CA 92093, USA.
Curr Biol. 2011 Jan 25;21(2):126-33. doi: 10.1016/j.cub.2010.12.021. Epub 2011 Jan 13.
Circadian clocks provide an adaptive advantage by allowing organisms to anticipate daily and seasonal environmental changes [1, 2]. Eukaryotic oscillators rely on complex hierarchical networks composed of transcriptional and posttranslational regulatory circuits [3]. In Arabidopsis, current representations of the circadian clock consist of three or four interlocked transcriptional feedback loops [3, 4]. Although molecular components contributing to different domains of these circuits have been described, how the loops are connected at the molecular level is not fully understood. Genetic screens previously identified LUX ARRHYTHMO (LUX) [5], also known as PHYTOCLOCK1 (PCL1) [6], an evening-expressed putative transcription factor essential for circadian rhythmicity. We determined the in vitro DNA-binding specificity for LUX by using universal protein binding microarrays; we then demonstrated that LUX directly regulates the expression of PSEUDO RESPONSE REGULATOR9 (PRR9), a major component of the morning transcriptional feedback circuit, through association with the newly discovered DNA binding site. We also show that LUX binds to its own promoter, defining a new negative autoregulatory feedback loop within the core clock. These novel connections between the archetypal loops of the Arabidopsis clock represent a significant advance toward defining the molecular dynamics underlying the circadian network in plants and provide the first mechanistic insight into the molecular function of the previously orphan clock factor LUX.
生物钟通过使生物体能够预测每日和季节性的环境变化,提供了一种适应优势[1,2]。真核生物振荡器依赖于由转录和翻译后调控回路组成的复杂层次网络[3]。在拟南芥中,当前的生物钟表示由三个或四个互锁的转录反馈回路组成[3,4]。尽管已经描述了有助于这些回路不同域的分子成分,但这些回路在分子水平上是如何连接的还不完全清楚。先前的遗传筛选鉴定了 LUX ARRHYTHMO(LUX)[5],也称为 PHYTOCLOCK1(PCL1)[6],这是一种在夜间表达的假定转录因子,对生物钟的节律性至关重要。我们通过使用通用蛋白结合微阵列确定了 LUX 的体外 DNA 结合特异性;然后,我们通过与新发现的 DNA 结合位点结合,证明 LUX 直接调节主要成分 PRR9 的表达,PRR9 是早晨转录反馈回路的主要组成部分。我们还表明,LUX 与其自身的启动子结合,在核心时钟内定义了一个新的负反馈回路。这些拟南芥生物钟原型回路之间的新连接代表了定义植物生物钟网络下的分子动力学的重要进展,并为先前孤儿时钟因子 LUX 的分子功能提供了第一个机械见解。