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Network balance via CRY signalling controls the Arabidopsis circadian clock over ambient temperatures
Authors:Peter D Gould  Nicolas Ugarte  Mirela Domijan  Maria Costa  Julia Foreman  Dana MacGregor  Ken Rose  Jayne Griffiths  Andrew J Millar  Bärbel Finkenstädt  Steven Penfield  David A Rand  Karen J Halliday  Anthony J W Hall
Affiliation:1. Institute of Integrative Biology, University of Liverpool, , Liverpool, UK;2. Warwick Systems Biology and Mathematics Institute, Coventry House, University of Warwick, , Coventry, UK;3. SynthSys, , Edinburgh, UK;4. School of Life Sciences, University of Exeter, , Exeter, UK;5. School of Biological Sciences, University of Edinburgh, , Edinburgh, UK
Abstract:Circadian clocks exhibit ‘temperature compensation’, meaning that they show only small changes in period over a broad temperature range. Several clock genes have been implicated in the temperature‐dependent control of period in Arabidopsis. We show that blue light is essential for this, suggesting that the effects of light and temperature interact or converge upon common targets in the circadian clock. Our data demonstrate that two cryptochrome photoreceptors differentially control circadian period and sustain rhythmicity across the physiological temperature range. In order to test the hypothesis that the targets of light regulation are sufficient to mediate temperature compensation, we constructed a temperature‐compensated clock model by adding passive temperature effects into only the light‐sensitive processes in the model. Remarkably, this model was not only capable of full temperature compensation and consistent with mRNA profiles across a temperature range, but also predicted the temperature‐dependent change in the level of LATE ELONGATED HYPOCOTYL, a key clock protein. Our analysis provides a systems‐level understanding of period control in the plant circadian oscillator.
Keywords:circadian rhythm  genetic network  mathematical model  systems biology
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