Laboratory of Plant Physiology and Molecular Genetics, Université libre de Bruxelles, 1050 Brussels, Belgium.
Department of Plant Sciences, University of Cambridge, CB2 3EA Cambridge, UK.
Plant Physiol. 2021 Mar 15;185(2):519-532. doi: 10.1093/plphys/kiaa042.
The circadian clock coordinates the physiological responses of a biological system to day and night rhythms through complex loops of transcriptional/translational regulation. It can respond to external stimuli and adjust generated circadian oscillations accordingly to maintain an endogenous period close to 24 h. However, the interaction between nutritional status and circadian rhythms in plants is poorly understood. Magnesium (Mg) is essential for numerous biological processes in plants, and its homeostasis is crucial to maintain optimal development and growth. Magnesium deficiency in young Arabidopsis thaliana seedlings increased the period of circadian oscillations of the CIRCADIAN CLOCK-ASSOCIATED 1 (CCA1) promoter (pCCA1:LUC) activity and dampened their amplitude under constant light in a dose-dependent manner. Although the circadian period increase caused by Mg deficiency was light dependent, it did not depend on active photosynthesis. Mathematical modeling of the Mg input into the circadian clock reproduced the experimental increase of the circadian period and suggested that Mg is likely to affect global transcription/translation levels rather than a single component of the circadian oscillator. Upon addition of a low dose of cycloheximide to perturb translation, the circadian period increased further under Mg deficiency, which was rescued when sufficient Mg was supplied, supporting the model's prediction. These findings suggest that sufficient Mg supply is required to support proper timekeeping in plants.
生物钟通过复杂的转录/翻译调节环,协调生物系统对日夜节律的生理反应。它可以对外界刺激做出反应,并相应地调整产生的昼夜节律振荡,以维持接近 24 小时的内源性周期。然而,植物的营养状态和昼夜节律之间的相互作用还了解甚少。镁(Mg)是植物中许多生物过程所必需的,其体内平衡对于维持最佳发育和生长至关重要。在拟南芥幼苗中,镁缺乏会增加 CIRCADIAN CLOCK-ASSOCIATED 1(CCA1)启动子(pCCA1:LUC)活性的昼夜节律振荡的周期,并以剂量依赖的方式减弱其在持续光照下的振幅。尽管镁缺乏引起的昼夜周期增加是光依赖性的,但它不依赖于活跃的光合作用。将镁输入生物钟的数学模型再现了实验中昼夜周期的增加,并表明镁可能影响全局转录/翻译水平,而不是昼夜振荡器的单个组件。当向翻译添加低剂量的环己酰亚胺以扰乱翻译时,镁缺乏下的昼夜周期进一步增加,当提供足够的镁时,这种增加得到挽救,这支持了模型的预测。这些发现表明,植物需要充足的镁供应来支持正确的计时。