Doxycycline down-regulates DNA-PK and radiosensitizes tumor initiating cells: Implications for more effective

Rebecca Lamb1,2, Marco Fiorillo1,2,3, Amy Chadwick1,2

  • 1The Breakthrough Breast Cancer Research Unit, Institute of Cancer Sciences, University of Manchester, UK.

Oncotarget
|June 19, 2015
PubMed

Insights

Doxycycline, an FDA-approved drug, significantly inhibits DNA-PK, an enzyme crucial for DNA repair and radio-resistance in cancer cells. This discovery offers a promising new strategy for cancer therapy by enhancing radiotherapy effectiveness.

Area of Science:

  • Oncology
  • Molecular Biology
  • Pharmacology

Background:

  • DNA-PK is a key enzyme in DNA repair, conferring radio-resistance in cancer cells and representing a validated pharmaceutical target.
  • Existing DNA-PK inhibitors face challenges due to poor pharmacokinetics, including low absorption and short plasma half-life, hindering clinical development.

Purpose of the Study:

  • To identify an FDA-approved drug with DNA-PK inhibitory activity and favorable pharmacokinetic properties.
  • To investigate the potential of doxycycline as a DNA-PK inhibitor and its efficacy in sensitizing cancer cells to radiotherapy.

Main Methods:

  • Chemical proteomics was employed to identify potential DNA-PK inhibitors.
  • Doxycycline's effect on DNA-PK protein expression, cancer stem cell (CSC) radio-sensitization, and mammosphere formation was assessed.
  • Mechanistic studies explored doxycycline's impact on mitochondrial oxidative capacity, glycolytic activity, and key stem cell signaling pathways.

Main Results:

  • Doxycycline was identified as the first FDA-approved DNA-PK inhibitor, reducing DNA-PK protein expression by over 90%.
  • Doxycycline functionally radio-sensitized breast CSCs by up to 4.5-fold and inhibited DNA-PK-dependent mammosphere formation.
  • Doxycycline treatment reduced cancer cell oxidative and glycolytic activity, suppressed antioxidant response, and blocked multiple stem cell signaling pathways.

Conclusions:

  • Doxycycline demonstrates significant potential as a DNA-PK inhibitor with excellent pharmacokinetics, warranting clinical trials in combination with radiotherapy.
  • Doxycycline's ability to inhibit CSCs and its blood-brain barrier penetration suggest potential applications in treating various cancers, including brain tumors.

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