Melatonin: an inhibitor of breast cancer

Steven M Hill1, Victoria P Belancio2, Robert T Dauchy2

  • 1Department of Structural and Cellular BiologyTulane University School of Medicine, 1430 Tulane Avenue, SL-49, New Orleans, Louisiana 70112, USADepartment of SurgeryTulane Cancer Center and Louisiana Cancer Research ConsortiumCircadian Cancer Biology GroupTulane Center for Circadian BiologyTulane University School of Medicine, New Orleans, Louisiana 70112, USA Department of Structural and Cellular BiologyTulane University School of Medicine, 1430 Tulane Avenue, SL-49, New Orleans, Louisiana 70112, USADepartment of SurgeryTulane Cancer Center and Louisiana Cancer Research ConsortiumCircadian Cancer Biology GroupTulane Center for Circadian BiologyTulane University School of Medicine, New Orleans, Louisiana 70112, USA Department of Structural and Cellular BiologyTulane University School of Medicine, 1430 Tulane Avenue, SL-49, New Orleans, Louisiana 70112, USADepartment of SurgeryTulane Cancer Center and Louisiana Cancer Research ConsortiumCircadian Cancer Biology GroupTulane Center for Circadian BiologyTulane University School of Medicine, New Orleans, Louisiana 70112, USA Department of Structural and Cellular BiologyTulane University School of Medicine, 1430 Tulane Avenue, SL-49, New Orleans, Louisiana 70112, USADepartment of SurgeryTulane Cancer Center and Louisiana Cancer Research ConsortiumCircadian Cancer Biology GroupTulane Center for Circadian BiologyTulane University School of Medicine, New Orleans, Louisiana 70112, USA smhill@tulane.edu.

Insights

Melatonin, a circadian signal, inhibits human breast cancer growth by regulating metabolism and gene expression. Circadian disruption from light at night (LEN) promotes cancer progression and treatment resistance.

Area of Science:

  • Chronobiology
  • Oncology
  • Molecular Signaling

Background:

  • Circadian disruption, particularly from light at night (LEN), is linked to increased human breast cancer risk.
  • Melatonin, a key circadian hormone, exhibits anti-cancer properties.
  • Understanding melatonin's molecular mechanisms in breast cancer is crucial for therapeutic development.

Purpose of the Study:

  • To review recent findings on melatonin's role in circadian regulation and human breast cancer.
  • To elucidate the metabolic and molecular signaling pathways involved in melatonin's anti-cancer effects.
  • To examine the consequences of circadian disruption by LEN on breast cancer.

Main Methods:

  • Review of existing literature on melatonin, circadian rhythms, and breast cancer.
  • Analysis of studies involving human breast cancer cell lines and xenografts.
  • Investigation of molecular mechanisms including receptor interactions, gene expression, and metabolic pathways.

Main Results:

  • Melatonin, via MT1 receptor, suppresses estrogen receptor alpha (ERα) expression and activity in ERα-positive breast cancer.
  • Melatonin inhibits tumor aerobic metabolism (Warburg effect) and critical cell signaling pathways.
  • Melatonin exhibits cytostatic, cytotoxic, anti-invasive, and anti-metastatic effects, including inhibiting epithelial-mesenchymal transition (EMT).
  • LEN-induced circadian disruption promotes breast cancer growth, metabolism, and resistance to endocrine and chemotherapy.

Conclusions:

  • Melatonin exerts significant anti-cancer effects in human breast cancer through MT1 receptor-mediated pathways.
  • Circadian disruption by LEN negatively impacts breast cancer, contributing to increased risk and treatment failure.
  • These findings support the link between night-shift work, LEN exposure, and elevated breast cancer risk.

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