Related Experiment Video
Updated: Apr 23, 2026

Rapid Analysis of Circadian Phenotypes in Arabidopsis Protoplasts Transfected with a Luminescent Clock Reporter
Published on: September 17, 2016
Acute inhibition of casein kinase 1δ/ε rapidly delays peripheral clock gene rhythms
D J Kennaway1, T J Varcoe, A Voultsios
1Robinson Research Institute, School of Paediatrics and Reproductive Health, University of Adelaide, Adelaide, SA, 5005, Australia, david.kennaway@adelaide.edu.au.
Abstract:
Circadian rhythms are generated through a transcription-translation feedback loop involving clock genes and the casein kinases CSNK1D and CSNK1E. In this study, we investigated the effects of the casein kinase inhibitor PF-670462 (50 mg/kg) on rhythmic expression of clock genes in the liver, pancreas and suprachiasmatic nucleus (SCN) as well as plasma corticosterone, melatonin and running behaviour in rats and compared them to the responses to a 4 h extension of the light phase. PF-670462 acutely phase delayed the rhythmic transcription of Bmal1, Per1, Per2 and Nr1d1 in both liver and pancreas by 4.5 ± 1.3 and 4.5 ± 1.2 h, respectively, 1 day after administration. In the SCN, the rhythm of Nr1d1 and Dbp mRNA expression was delayed by 4.2 and 4 h, respectively. Despite these changes, the time of peak plasma melatonin secretion was not delayed, although the plasma corticosterone rhythm and onset of wheel-running activity were delayed by 2.1 and 1.1 h, respectively. These changes are in contrast to the effects of the 4 h light extension, which resulted in delays in peak expression of the clock genes of less than 1 h and no change in the melatonin or corticosterone rhythms. The ability of the casein kinase inhibitor to bring about large phase shifts in the rhythms of major metabolic target tissues may lead to new drugs being developed to rapidly phase adjust circadian rhythms to alleviate the metabolic impact of shift work.
Insights
A casein kinase inhibitor, PF-670462, significantly phase delays circadian clock gene rhythms in rat liver, pancreas, and SCN. This highlights potential for new therapies to manage circadian disruption from shift work.
Area of Science:
- Chronobiology
- Molecular Pharmacology
- Neuroendocrinology
Background:
- Circadian rhythms are regulated by molecular feedback loops involving clock genes and casein kinases.
- Disruptions to circadian rhythms, common in shift work, have significant metabolic consequences.
Purpose of the Study:
- To investigate the effects of the casein kinase inhibitor PF-670462 on circadian rhythms in rats.
- To compare these effects to those induced by extending the light phase.
Main Methods:
- Administration of PF-670462 (50 mg/kg) or a 4-hour light phase extension to rats.
- Measurement of clock gene mRNA expression in liver, pancreas, and SCN.
- Monitoring of plasma corticosterone and melatonin levels, and running behavior.
Main Results:
- PF-670462 caused significant phase delays (approx. 4-4.5 hours) in clock gene transcription in peripheral tissues and the SCN.
- While plasma corticosterone and running activity onset were delayed, melatonin secretion timing remained unchanged.
- A 4-hour light extension caused minimal delays (<1 hour) in clock gene expression and no changes in hormone rhythms.
Conclusions:
- Casein kinase inhibition potently shifts circadian rhythms in key metabolic tissues.
- PF-670462 demonstrates potential as a therapeutic agent for rapid circadian adjustment, offering a novel approach to mitigate shift work's metabolic impact.
More Related Videos
10:33Flexible Measurement of Bioluminescent Reporters Using an Automated Longitudinal Luciferase Imaging Gas- and Temperature-optimized Recorder ALLIGATOR
Published on: December 13, 2017
10:38Monitoring Cell-autonomous Circadian Clock Rhythms of Gene Expression Using Luciferase Bioluminescence Reporters
Published on: September 27, 2012
Related Concept Videos
Circadian Rhythms and Gene Regulation
Circadian Rhythms and Gene Regulation
Biological Clocks and Seasonal Responses
Inhibition of Cdk Activity
Inhibition of CDK Activity
Calmodulin-dependent Signaling
The Ca2+-CaM complex does not have enzymatic activity by itself. Instead, the complex binds downstream target proteins, including membrane proteins or enzymes,...