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植物昼夜节律系统中的器官特异性是由茎和根生物钟所接收的不同光输入来解释的。

Organ specificity in the plant circadian system is explained by different light inputs to the shoot and root clocks.

作者信息

Bordage Simon, Sullivan Stuart, Laird Janet, Millar Andrew J, Nimmo Hugh G

机构信息

Institute of Molecular, Cell and Systems Biology, University of Glasgow, Glasgow, G12 8QQ, UK.

SynthSys, University of Edinburgh, Edinburgh, EH9 3JD, UK.

出版信息

New Phytol. 2016 Oct;212(1):136-49. doi: 10.1111/nph.14024. Epub 2016 May 31.

Abstract

Circadian clocks allow the temporal compartmentalization of biological processes. In Arabidopsis, circadian rhythms display organ specificity but the underlying molecular causes have not been identified. We investigated the mechanisms responsible for the similarities and differences between the clocks of mature shoots and roots in constant conditions and in light : dark cycles. We developed an imaging system to monitor clock gene expression in shoots and light- or dark-grown roots, modified a recent mathematical model of the Arabidopsis clock and used this to simulate our new data. We showed that the shoot and root circadian clocks have different rhythmic properties (period and amplitude) and respond differently to light quality. The root clock was entrained by direct exposure to low-intensity light, even in antiphase to the illumination of shoots. Differences between the clocks were more pronounced in conditions where light was present than in constant darkness, and persisted in the presence of sucrose. We simulated the data successfully by modifying those parameters of a clock model that are related to light inputs. We conclude that differences and similarities between the shoot and root clocks can largely be explained by organ-specific light inputs. This provides mechanistic insight into the developing field of organ-specific clocks.

摘要

生物钟使生物过程能够进行时间上的区室化。在拟南芥中,昼夜节律表现出器官特异性,但其潜在的分子原因尚未明确。我们研究了在恒定条件和光暗周期下,成熟地上部分和根的生物钟之间异同的机制。我们开发了一种成像系统来监测地上部分以及光照或黑暗条件下生长的根中的生物钟基因表达,修改了一个近期的拟南芥生物钟数学模型,并使用该模型模拟我们的新数据。我们发现地上部分和根的生物钟具有不同的节律特性(周期和振幅),并且对光质的反应也不同。即使与地上部分的光照呈反相,根生物钟也能通过直接暴露于低强度光而被同步。生物钟之间的差异在有光照的条件下比在持续黑暗中更为明显,并且在有蔗糖存在时依然存在。我们通过修改生物钟模型中与光输入相关的参数成功模拟了数据。我们得出结论,地上部分和根生物钟之间的异同很大程度上可以由器官特异性的光输入来解释。这为器官特异性生物钟这一新兴领域提供了机制上的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/59e4/5006879/f708b06599bf/NPH-212-136-g001.jpg

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