Limit Cycle Models for Circadian Rhythms Based on Transcriptional Regulation in Drosophila and Neurospora
- 1 December 1999
- journal article
- review article
- Published by SAGE Publications in Journal of Biological Rhythms
- Vol. 14 (6) , 433-448
- https://doi.org/10.1177/074873099129000948
Abstract
We examine theoretical models for circadian oscillations based on transcriptional regulation in Drosophila and Neurospora. For Drosophila, the molecular model is based on the negative feedback exerted on the expression of the per and tim genes by the complex formed between the PER and TIM proteins. For Neurospora, similarly, the model relies on the feedback exerted on the expression of the frq gene by its protein product FRQ. In both models, sustained rhythmic variations in protein and mRNA levels occur in continuous darkness, in the form of limit cycle oscillations. The effect of light on circadian rhythms is taken into account in the models by considering that it triggers degradation of the TIM protein in Drosophila, and frq transcription in Neurospora. When incorporating the control exerted by light at the molecular level, we show that the models can account for the entrainment of circadian rhythms by light-dark cycles and for the damping of the oscillations in constant light, though such damping occurs more readily in the Drosophila model. The models account for the phase shifts induced by light pulses and allow the construction of phase response curves. These compare well with experimental results obtained in Drosophila. The model for Drosophila shows that when applied at the appropriate phase, light pulses of appropriate duration and magnitude can permanently or transiently suppress circadian rhythmicity. We investigate the effects of the magnitude of light-induced changes on oscillatory behavior. Finally, we discuss the common and distinctive features of circadian oscillations in the two organisms.Keywords
This publication has 36 references indexed in Scilit:
- Common threads in eukaryotic circadian systemsCurrent Opinion in Genetics & Development, 1998
- Closing the Circadian Loop: CLOCK-Induced Transcription of Its Own Inhibitors per and timScience, 1998
- A Mutant Drosophila Homolog of Mammalian Clock Disrupts Circadian Rhythms and Transcription of period and timelessCell, 1998
- DrosophilaPhotoreceptors Contain an Autonomous Circadian Oscillator That Can Function withoutperiodmRNA CyclingJournal of Neuroscience, 1998
- Neurospora wc-1 and wc-2 : Transcription, Photoresponses, and the Origins of Circadian RhythmicityScience, 1997
- Alternative Initiation of Translation and Time-Specific Phosphorylation Yield Multiple Forms of the Essential Clock Protein FREQUENCYCell, 1997
- Light-induced resetting of a circadian clock is mediated by a rapid increase in frequency transcriptCell, 1995
- Temporally regulated nuclear entry of the Drosophila period protein contributes to the circadian clockNeuron, 1995
- Temporal phosphorylation of the Drosophila period protein.Proceedings of the National Academy of Sciences, 1994
- Phase response curves obtained by perturbing different variables of a 24 hr model oscillator based on translational controlJournal of Theoretical Biology, 1982