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.

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.

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