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Cycling of clock genes entrained to the solar rhythm enables plants to tell time: data from arabidopsis

机译:太阳节律携带的时钟基因的循环使植物能够分辨时间:来自拟南芥的数据

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摘要

>Background and Aims An endogenous rhythm synchronized to dawn cannot time photosynthesis-linked genes to peak consistently at noon since the interval between sunrise and noon changes seasonally. In this study, a solar clock model that circumvents this limitation is proposed using two daily timing references synchronized to noon and midnight. Other rhythmic genes that are not directly linked to photosynthesis, and which peak at other times, also find an adaptive advantage in entrainment to the solar rhythm.>Methods Fourteen datasets extracted from three published papers were used in a meta-analysis to examine the cyclic behaviour of the Arabidopsis thaliana photosynthesis-related gene CAB2 and the clock oscillator genes TOC1 and LHY in T cycles and N–H cycles.>Key Results Changes in the rhythms of CAB2, TOC1 and LHY in plants subjected to non-24-h light:dark cycles matched the hypothesized changes in their behaviour as predicted by the solar clock model, thus validating it. The analysis further showed that TOC1 expression peaked ∼5·5 h after mid-day, CAB2 peaked close to noon, while LHY peaked ∼7·5 h after midnight, regardless of the cycle period, the photoperiod or the light:dark period ratio. The solar clock model correctly predicted the zeitgeber timing of these genes under 11 different lighting regimes comprising combinations of seven light periods, nine dark periods, four cycle periods and four light:dark period ratios. In short cycles that terminated before LHY could be expressed, the solar clock correctly predicted zeitgeber timing of its expression in the following cycle.>Conclusions Regulation of gene phases by the solar clock enables the plant to tell the time, by which means a large number of genes are regulated. This facilitates the initiation of gene expression even before the arrival of sunrise, sunset or noon, thus allowing the plant to ‘anticipate’ dawn, dusk or mid-day respectively, independently of the photoperiod.
机译:>背景和目标:由于日出和正午之间的间隔随季节变化,与黎明同步的内源性节奏无法使与光合作用相关的基因在中午始终达到峰值。在这项研究中,使用两个与正午和午夜同步的每日时间基准,提出了一个克服这一限制的太阳时钟模型。其他与光合作用不直接相关且在其他时间达到顶峰的节律基因也发现了在吸收太阳节律方面的适应性优势。>方法从三篇已发表论文中提取的十四个数据集用于meta分析研究拟南芥光合作用相关基因CAB2和时钟振荡器基因TOC1和LHY在T周期和N–H周期中的循环行为。>主要结果 CAB2,TOC1的节律变化经受非24小时光照的植物中的LHY和LHY:黑暗周期与太阳钟模型所预测的行为假定的变化相匹配,从而对其进行了验证。分析进一步表明,无论周期,光周期或光暗周期比如何,TOC1表达在中午后达到约5·5 h,CAB2在接近中午时达到峰值,而LHY在午夜后达到约7·5 h。 。太阳时钟模型正确预测了这些基因在11种不同光照制度下的Zeitgeber时机,包括7个亮周期,9个暗周期,4个周期周期和4个亮暗周期比率的组合。在可以表达LHY之前终止的短周期中,太阳钟正确地预测了下一个周期中其表达的Zeitgeber时序。>结论通过太阳钟对基因相的调节,植物可以知道时间,通过这种方式可以调节大量基因。这甚至在日出,日落或中午之前就促进了基因表达的启动,从而使植物能够分别“预期”黎明,黄昏或中午,而与光周期无关。

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