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Adaptation to experimental jet-lag in R6/2 mice despite circadian dysrhythmia
Nigel I Wood1, Catherine J McAllister, Marc Cuesta
1Department of Physiology, Development and Neuroscience, University of Cambridge, Cambridge, United Kingdom.
Abstract:
The R6/2 transgenic mouse model of Huntington's disease (HD) shows a disintegration of circadian rhythms that can be delayed by pharmacological and non-pharmacological means. Since the molecular machinery underlying the circadian clocks is intact, albeit progressively dysfunctional, we wondered if light phase shifts could modulate the deterioration in daily rhythms in R6/2 mice. Mice were subjected to four x 4 hour advances in light onset. R6/2 mice adapted to phase advances, although angles of entrainment increased with age. A second cohort was subjected to a jet-lag paradigm (6 hour delay or advance in light onset, then reversal after 2 weeks). R6/2 mice adapted to the original shift, but could not adjust accurately to the reversal. Interestingly, phase shifts ameliorated the circadian rhythm breakdown seen in R6/2 mice under normal LD conditions. Our previous finding that the circadian period (tau) of 16 week old R6/2 mice shortens to approximately 23 hours may explain how they adapt to phase advances and maintain regular circadian rhythms. We tested this using a 23 hour period light/dark cycle. R6/2 mice entrained to this cycle, but onsets of activity continued to advance, and circadian rhythms still disintegrated. Therefore, the beneficial effects of phase-shifting are not due solely to the light cycle being closer to the tau of the mice. Our data show that R6/2 mice can adapt to changes in the LD schedule, even beyond the age when their circadian rhythms would normally disintegrate. Nevertheless, they show abnormal responses to changes in light cycles. These might be caused by a shortened tau, impaired photic re-synchronization, impaired light detection and/or reduced masking by evening light. If similar abnormalities are present in HD patients, they may suffer exaggerated jet-lag. Since the underlying molecular clock mechanism remains intact, light may be a useful treatment for circadian dysfunction in HD.
Insights
Light phase shifts can delay circadian rhythm breakdown in Huntington's disease (HD) mouse models. While R6/2 mice adapt to light schedule changes, their abnormal responses suggest potential challenges for HD patients experiencing jet lag.
Area of Science:
- Neuroscience
- Chronobiology
- Genetics
Background:
- Huntington's disease (HD) mouse models exhibit disrupted circadian rhythms.
- The molecular clock machinery in HD models remains functional but dysfunctional.
- Light phase shifts are explored as a potential intervention for circadian disruption.
Purpose of the Study:
- To investigate if light phase shifts can modulate the deterioration of daily rhythms in R6/2 HD mouse models.
- To determine the adaptive capacity of R6/2 mice to altered light-dark cycles.
- To understand the mechanisms underlying circadian rhythm abnormalities in HD.
Main Methods:
- R6/2 mice were subjected to repeated 4-hour light onset advances.
- A second cohort experienced a jet-lag paradigm with 6-hour shifts and reversals.
- Entrainment and activity onsets were monitored under various light-dark conditions, including a 23-hour cycle.
Main Results:
- R6/2 mice adapted to light phase advances, though entrainment angles increased with age.
- Mice adapted to initial jet-lag shifts but failed to adjust to subsequent reversals.
- Phase shifts ameliorated circadian rhythm breakdown, but did not solely depend on the cycle matching the mice's circadian period (tau).
- R6/2 mice demonstrated abnormal responses to light cycle changes, potentially due to shortened tau or impaired photic responses.
Conclusions:
- R6/2 mice can adapt to altered light-dark schedules, even past the typical age of circadian disintegration.
- Abnormal responses to light shifts suggest potential exaggerated jet-lag effects in HD patients.
- Light interventions may be beneficial for treating circadian dysfunction in Huntington's disease, given the intact molecular clock mechanism.
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