Liver circadian clock, a pharmacologic target of cyclin-dependent kinase inhibitor seliciclib

Ida Iurisci1, Elisabeth Filipski, Hatem Sallam

  • 1INSERM, U 776 Rythmes biologiques et cancers, Hôp. P. Brousse, Villejuif, F-94807, France.

Chronobiology International
|September 5, 2009
PubMed

Insights

Timing of seliciclib (a CDK inhibitor) delivery is critical for its effects on the circadian clock, not drug exposure levels. This finding impacts cancer therapy schedules and potential liver toxicity.

Area of Science:

  • Chronobiology
  • Cancer Biology
  • Pharmacology

Background:

  • Circadian disruption accelerates cancer progression and reduces survival.
  • Seliciclib, a cyclin-dependent kinase (CDK) inhibitor, previously rescued tumor circadian disruption at specific doses.
  • Understanding the timing of drug administration is crucial for optimizing cancer therapy.

Purpose of the Study:

  • To investigate the impact of seliciclib dosing time on the molecular clock in mouse liver.
  • To determine if drug exposure levels or dosing time is more critical for seliciclib's effects on the circadian clock.
  • To explore the relationship between seliciclib, circadian clock disruption, and potential liver toxicity.

Main Methods:

  • Administered seliciclib to mice at different circadian times (ZT3 and ZT19).
  • Measured circadian mRNA expression of clock genes (Rev-erb alpha, Per2, Bmal1) in the liver.
  • Assessed liver exposure (AUC), serum liver enzymes, and hepatocyte glycogen distribution.
  • Analyzed the transcriptional activity of cell cycle genes (c-Myc, Wee1).

Main Results:

  • Seliciclib at ZT3 altered clock gene expression, but not at ZT19, despite higher liver exposure at ZT19.
  • Circadian clock disruption correlated with increased liver enzymes (more pronounced at ZT3) and altered glycogen distribution.
  • Seliciclib modulated c-Myc and Wee1 expression, independent of dosing time.
  • Dosing time, not exposure level, was critical for seliciclib's effects on the liver molecular clock.

Conclusions:

  • The circadian timing of seliciclib administration is more important than exposure levels for its impact on the liver molecular clock.
  • Seliciclib-induced circadian clock disruption may contribute to liver toxicity via impaired detoxification pathways.
  • Circadian clocks are important targets for optimizing therapeutic schedules of CDK inhibitors in cancer treatment.

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