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Probing entrainment of Ostreococcus tauri circadian clock by green and blue light through a mathematical modeling approach

机译:通过数学建模方法用绿色和蓝色光探测金黄色葡萄球菌的生物钟的夹带

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摘要

Most organisms anticipate daily environmental variations and orchestrate cellular functions thanks to a circadian clock which entrains robustly to the dayight cycle, despite fluctuations in light intensity due to weather or seasonal variations. Marine organisms are also subjected to fluctuations in light spectral composition as their depth varies, due to differential absorption of different wavelengths by sea water. Studying how light input pathways contribute to circadian clock robustness is therefore important. Ostreococcus tauri, a unicellular picoplanktonic marine green alga with low genomic complexity and simple cellular organization, has become a promising model organism for systems biology. Functional and modeling approaches have shown that a core circadian oscillator based on orthologs of Arabidopsis TOC1 and CCA1 clock genes accounts for most experimental data acquired under a wide range of conditions. Some evidence points at putative light input pathway(s) consisting of a two-component signaling system (TCS) controlled by the only two histidine kinases (HK) of O. tauri. LOV-HK is a blue light photoreceptor under circadian control, that is required for circadian clock function. An involvement of Rhodopsin-HK (Rhod-HK) is also conceivable since rhodopsin photoreceptors mediate blue to green light input in animal circadian clocks. Here, we probe the role of LOV-HK and Rhod-HK in mediating light input to the TOC1-CCA1 oscillator using a mathematical model incorporating the TCS hypothesis. This model agrees with clock gene expression time series representative of multiple environmental conditions in blue or green light, characterizing entrainment by light/dark cycles, free-running in constant light, and resetting. Experimental and theoretical results indicate that both blue and green light can reset O. tauri circadian clock. Moreover, our mathematical analysis suggests that Rhod-HK is a blue-green light receptor and drives the clock together with LOV-HK.
机译:尽管由于天气或季节变化而导致光强度发生波动,但由于昼夜节律时钟能将昼夜周期牢固地带入环境,因此大多数生物体都可以预期每日环境变化并协调细胞功能。由于海水对不同波长的差异吸收,随着深度的变化,海洋生物的光谱成分也会发生波动。因此,研究光输入途径如何促进生物钟的稳健性很重要。 tauriococcus tauri是一种单细胞微浮游生物海洋绿藻,具有较低的基因组复杂性和简单的细胞组织,已成为系统生物学的有希望的模式生物。功能和建模方法表明,基于拟南芥TOC1和CCA1时钟基因直系同源物的核心生物钟振荡器可解释在多种条件下获得的大多数实验数据。一些证据指向推定的光输入路径,该光输入路径由仅由金黄色葡萄球菌的两个组氨酸激酶(HK)控制的两组分信号系统(TCS)组成。 LOV-HK是受昼夜节律控制的蓝光感光体,是昼夜节律功能所必需的。由于视紫红质感光体介导了动物昼夜钟中的蓝光到绿光输入,因此也可以设想到视紫红质香港(Rhod-HK)的参与。在这里,我们使用结合了TCS假设的数学模型,探讨LOV-HK和Rhod-HK在介导输入到TOC1-CCA1振荡器的光中的作用。该模型与代表在蓝光或绿光下的多种环境条件的时钟基因表达时间序列相一致,该特征表征了明/暗循环的夹带,在恒定光照下自由运行并重置。实验和理论结果表明,蓝光和绿光都可以重置金牛座生物钟。此外,我们的数学分析表明,Rhod-HK是蓝绿色光接收器,与LOV-HK一起驱动时钟。

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