Chronic jetlag-induced alterations in pancreatic diurnal gene expression

Patrick B Schwartz1, Morgan T Walcheck1, Mark Berres2

  • 1Division of Surgical Oncology, Department of Surgery, University of Wisconsin School of Medicine and Public Health, Madison, Wisconsin.

Insights

Chronic jetlag disrupts the mouse pancreatic transcriptome, reducing rhythmic gene expression and causing phase shifts in metabolic and insulin signaling pathways. The pancreas shows a persistent failure to re-adapt to new light-dark cycles.

Area of Science:

  • Chronobiology
  • Molecular Biology
  • Physiology

Background:

  • Cell-autonomous circadian clocks are vital for homeostasis in most organs.
  • Peripheral clocks respond to disruptions like chronic jetlag and shift work.
  • The impact of chronic jetlag on the mouse pancreatic transcriptome remains understudied.

Purpose of the Study:

  • To evaluate diurnal variations in the mouse pancreatic transcriptome.
  • To investigate the effects of chronic jetlag on pancreatic gene expression rhythms.
  • To assess the persistence of circadian disruption in the pancreas.

Main Methods:

  • Exposure of mice to a chronic jetlag protocol.
  • Analysis of pancreatic transcriptome over 48 hours.
  • Assessment of rhythmic gene expression and phase shifts in core clock genes, metabolic genes, and pancreas-specific genes.

Main Results:

  • Approximately 5.4% of the pancreatic transcriptome exhibited diurnal rhythmicity.
  • Chronic jetlag reduced rhythmic transcripts to 3.6% and caused phase shifts in nearly all core clock genes.
  • Over 95% of rhythmic genes, including those in metabolism and insulin signaling, showed phase shifts.
  • Pancreatic gene expression failed to re-entrain 9 days after normalization, indicating persistent disruption.

Conclusions:

  • Chronic jetlag significantly alters the pancreatic transcriptome, disrupting circadian rhythms.
  • Metabolic and insulin signaling pathways in the pancreas are particularly affected by circadian disruption.
  • The pancreas exhibits a prolonged inability to re-synchronize its clock after chronic jetlag, impacting homeostasis.

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