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Parallel Measurement of Circadian Clock Gene Expression and Hormone Secretion in Human Primary Cell Cultures
Published on: November 11, 2016
Modeling the effects of cell cycle M-phase transcriptional inhibition on circadian oscillation
Bin Kang1, Yuan-Yuan Li, Xiao Chang
1Laboratory of Systems Biology [corrected] Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai, China.
Abstract:
Circadian clocks are endogenous time-keeping systems that temporally organize biological processes. Gating of cell cycle events by a circadian clock is a universal observation that is currently considered a mechanism serving to protect DNA from diurnal exposure to ultraviolet radiation or other mutagens. In this study, we put forward another possibility: that such gating helps to insulate the circadian clock from perturbations induced by transcriptional inhibition during the M phase of the cell cycle. We introduced a periodic pulse of transcriptional inhibition into a previously published mammalian circadian model and simulated the behavior of the modified model under both constant darkness and light-dark cycle conditions. The simulation results under constant darkness indicated that periodic transcriptional inhibition could entrain/lock the circadian clock just as a light-dark cycle does. At equilibrium states, a transcriptional inhibition pulse of certain periods was always locked close to certain circadian phases where inhibition on Per and Bmal1 mRNA synthesis was most balanced. In a light-dark cycle condition, inhibitions imposed at different parts of a circadian period induced different degrees of perturbation to the circadian clock. When imposed at the middle- or late-night phase, the transcriptional inhibition cycle induced the least perturbations to the circadian clock. The late-night time window of least perturbation overlapped with the experimentally observed time window, where mitosis is most frequent. This supports our hypothesis that the circadian clock gates the cell cycle M phase to certain circadian phases to minimize perturbations induced by the latter. This study reveals the hidden effects of the cell division cycle on the circadian clock and, together with the current picture of genome stability maintenance by circadian gating of cell cycle, provides a more comprehensive understanding of the phenomenon of circading gating of cell cycle.
Insights
Circadian clocks gate cell cycle M phase to protect DNA and minimize clock disruption. This study shows cell division protects the circadian clock from transcriptional inhibition during mitosis.
Area of Science:
- Chronobiology
- Cell Biology
- Systems Biology
Background:
- Circadian clocks organize biological processes, gating cell cycle events is linked to DNA protection.
- The role of cell cycle gating in protecting the circadian clock itself remains unexplored.
Purpose of the Study:
- To investigate if circadian gating of the cell cycle M phase protects the circadian clock from perturbations.
- To explore the hypothesis that M phase gating insulates the circadian clock from transcriptional inhibition.
Main Methods:
- A mammalian circadian model was modified with periodic transcriptional inhibition.
- Simulations were performed under constant darkness and light-dark cycles.
- The impact of inhibition timing on clock stability was analyzed.
Main Results:
- Periodic transcriptional inhibition can entrain the circadian clock, similar to light-dark cycles.
- Inhibition pulses locked to specific circadian phases where Per and Bmal1 mRNA synthesis inhibition was balanced.
- Least clock perturbation occurred when inhibition was applied during the middle or late-night phase.
Conclusions:
- Circadian gating of M phase minimizes perturbations to the circadian clock.
- This gating protects the clock from the disruptive effects of cell division.
- Findings offer a comprehensive view of cell cycle-circadian clock interactions and genome stability.
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