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Updated: Mar 15, 2026

Recording and Analysis of Circadian Rhythms in Running-wheel Activity in Rodents
Published on: January 24, 2013
Modeling reveals temperature compensation and entrainment in the peroxiredoxin-based redox oscillator as an ancient
Xuesong Luo1, Qi Ouyang2, Hongli Wang1,3
1The State Key Laboratory for Artificial Microstructures and Mesoscopic Physics, School of Physics, Peking University, Beijing, People's Republic of China.
Abstract:
Peroxiredoxins (PRXs) are antioxidant enzymes that exhibit ∼24 h redox-state oscillations across diverse life forms. These non-transcriptional rhythms operate independently of the canonical transcription-translation feedback loops, suggesting an ancient, conserved timekeeping mechanism. However, whether this redox oscillator meets the core circadian criteria-entrainment and temperature compensation-remains a key question. To address this, we developed and calibrated a mathematical model of the mitochondrial PRX/ sulfiredoxin/thioredoxin redox cycle using physiologically meaningful parameters. The model quantitatively reproduced experimental redox oscillations inA. thaliana, D. melanogaster, andM. musculus. Simulations revealed that the PRX redox oscillator possesses both temperature-compensated periodicity and the capacity for entrainment by periodic thermal and oxidative signals, thereby fulfilling the core criteria of a circadian clock. The inverse angular speed, when integrated over the closed orbit, is largely temperature-invariant, thus providing a mathematical basis for the observed period stability. The calculated phase response curves, which show phase-dependent shifts, together with the broad Arnold tongue for 1:1 resonance, demonstrate a substantial entrainment range that enables the internal rhythm to robustly lock onto periodic environmental Zeitgebers.
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