Heat the Clock: Entrainment and Compensation in Arabidopsis Circadian Rhythms.

Q2 Biochemistry, Genetics and Molecular Biology
Paula A Avello, Seth J Davis, James Ronald, Jonathan W Pitchford
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引用次数: 17

Abstract

The circadian clock is a biological mechanism that permits some organisms to anticipate daily environmental variations. This clock generates biological rhythms, which can be reset by environmental cues such as cycles of light or temperature, a process known as entrainment. After entrainment, circadian rhythms typically persist with approximately 24 hours periodicity in free-running conditions, i.e. in the absence of environmental cues. Experimental evidence also shows that a free-running period close to 24 hours is maintained across a range of temperatures, a process known as temperature compensation. In the plant Arabidopsis, the effect of light on the circadian system has been widely studied and successfully modelled mathematically. However, the role of temperature in periodicity, and the relationship between entrainment and compensation, are not fully understood. Here we adapt recent models to incorporate temperature dependence by applying Arrhenius equations to the parameters of the models that characterize transcription, translation, and degradation rates. We show that the resulting models can exhibit thermal entrainment and temperature compensation, but that these phenomena emerge from physiologically different sets of processes. Further simulations combining thermal and photic forcing in more realistic scenarios clearly distinguish between the processes of entrainment and compensation, and reveal temperature compensation as an emergent property which can arise as a result of multiple temperature-dependent interactions. Our results consistently point to the thermal sensitivity of degradation rates as driving compensation and entrainment across a range of conditions.

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加热时钟:拟南芥昼夜节律的诱导和补偿。
生物钟是一种生物机制,它允许一些生物体预测每天的环境变化。生物钟产生的生物节律可以通过环境因素(如光或温度的循环)进行重置,这一过程被称为“夹带”。诱捕后,在自由运行的条件下,即在没有环境线索的情况下,昼夜节律通常以大约24小时的周期持续。实验证据还表明,在一定温度范围内,可以保持接近24小时的自由运行期,这一过程被称为温度补偿。在拟南芥中,光对昼夜节律系统的影响已经被广泛研究,并成功地建立了数学模型。然而,温度在周期性中的作用以及夹带和补偿之间的关系尚未完全了解。在这里,我们通过将Arrhenius方程应用于表征转录、翻译和降解率的模型参数,来适应最近的模型,以纳入温度依赖性。我们表明,所得到的模型可以表现出热夹带和温度补偿,但这些现象是从生理上不同的过程中出现的。进一步的模拟结合了更现实的情景下的热强迫和光强迫,清楚地区分了夹带过程和补偿过程,并揭示了温度补偿作为一种紧急性质,可能是多种温度依赖相互作用的结果。我们的结果一致地指出,在一系列条件下,降解率的热敏性作为驱动补偿和夹带。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Circadian Rhythms
Journal of Circadian Rhythms Biochemistry, Genetics and Molecular Biology-Physiology
CiteScore
7.10
自引率
0.00%
发文量
0
审稿时长
12 weeks
期刊介绍: Journal of Circadian Rhythms is an Open Access, peer-reviewed online journal that publishes research articles dealing with circadian and nycthemeral (daily) rhythms in living organisms, including processes associated with photoperiodism and daily torpor. Journal of Circadian Rhythms aims to include both basic and applied research at any level of biological organization (molecular, cellular, organic, organismal, and populational). Studies of daily rhythms in environmental factors that directly affect circadian rhythms are also pertinent to the journal"s mission.
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