Dim Light at Night Disturbs Molecular Pathways of Lipid Metabolism

Monika Okuliarova1, Valentina Sophia Rumanova1, Katarina Stebelova1

  • 1Department of Animal Physiology and Ethology, Faculty of Natural Sciences, Comenius University, Ilkovicova 6, 842 15 Bratislava, Slovakia.

Insights

Dim light at night (dLAN) disrupts lipid metabolism, causing fat buildup in the liver and altering metabolic pathways. This research links dLAN exposure to potential metabolic disease risks in healthy individuals.

Area of Science:

  • Metabolic Physiology
  • Chronobiology
  • Lipid Metabolism

Background:

  • Dim light at night (dLAN) is linked to metabolic risks, but its specific effects on lipid metabolism are not well understood.
  • Understanding dLAN's impact on lipid homeostasis is crucial for public health, given widespread light pollution.

Purpose of the Study:

  • To investigate the effects of dLAN on lipid metabolic homeostasis in healthy individuals.
  • To analyze the molecular and hormonal mechanisms underlying dLAN-induced metabolic changes.

Main Methods:

  • Wistar rats were exposed to dLAN (~2 lx) for 2 and 5 weeks.
  • Analysis of lipogenic pathways in the liver and epididymal fat pad.
  • Assessment of hormonal and molecular control mechanisms, including gene expression of PPARs.

Main Results:

  • dLAN promoted hepatic triacylglycerol accumulation and upregulated genes for de novo fatty acid synthesis.
  • Elevated glucose and fatty acid uptake were observed in the liver.
  • Suppressed adipose tissue fatty acid synthesis and altered plasma adipokine levels indicated disturbed adipocyte function.

Conclusions:

  • dLAN impairs lipid biosynthetic pathways, leading to increased hepatic lipid storage.
  • dLAN exposure deregulates key metabolic transcription factors like PPARα and PPARγ.
  • These findings suggest a potential mechanism linking dLAN exposure to metabolic diseases.

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