Zhou Mian, Wang Wei, Karapetyan Sargis, Mwimba Musoki, Marqués Jorge, Buchler Nicolas E, Dong Xinnian
1] Howard Hughes Medical Institute-Gordon and Betty Moore Foundation, Duke University, Durham, North Carolina 27708, USA [2] Department of Biology, PO Box 90338, Duke University, Durham, North Carolina 27708, USA.
Department of Physics, Duke University, Durham, North Carolina 27708, USA.
Nature. 2015 Jul 23;523(7561):472-6. doi: 10.1038/nature14449. Epub 2015 Jun 22.
Recent studies have shown that in addition to the transcriptional circadian clock, many organisms, including Arabidopsis, have a circadian redox rhythm driven by the organism's metabolic activities. It has been hypothesized that the redox rhythm is linked to the circadian clock, but the mechanism and the biological significance of this link have only begun to be investigated. Here we report that the master immune regulator NPR1 (non-expressor of pathogenesis-related gene 1) of Arabidopsis is a sensor of the plant's redox state and regulates transcription of core circadian clock genes even in the absence of pathogen challenge. Surprisingly, acute perturbation in the redox status triggered by the immune signal salicylic acid does not compromise the circadian clock but rather leads to its reinforcement. Mathematical modelling and subsequent experiments show that NPR1 reinforces the circadian clock without changing the period by regulating both the morning and the evening clock genes. This balanced network architecture helps plants gate their immune responses towards the morning and minimize costs on growth at night. Our study demonstrates how a sensitive redox rhythm interacts with a robust circadian clock to ensure proper responsiveness to environmental stimuli without compromising fitness of the organism.
最近的研究表明,除了转录昼夜节律时钟外,包括拟南芥在内的许多生物都有由生物体代谢活动驱动的昼夜氧化还原节律。据推测,氧化还原节律与昼夜节律时钟有关,但这种联系的机制和生物学意义才刚刚开始被研究。在此我们报告,拟南芥的主要免疫调节因子NPR1(病程相关基因1的非表达子)是植物氧化还原状态的传感器,即使在没有病原体攻击的情况下也能调节核心昼夜节律时钟基因的转录。令人惊讶的是,由免疫信号水杨酸引发的氧化还原状态的急性扰动不会损害昼夜节律时钟,反而会导致其增强。数学建模及后续实验表明,NPR1通过调节早晨和傍晚的时钟基因来增强昼夜节律时钟,而不改变周期。这种平衡的网络结构有助于植物将其免疫反应控制在早晨,并将夜间生长的成本降至最低。我们的研究证明了敏感的氧化还原节律如何与强大的昼夜节律时钟相互作用,以确保对环境刺激做出适当反应,同时不损害生物体的适应性。