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.
Abstract:
DNA-PK is an enzyme that is required for proper DNA-repair and is thought to confer radio-resistance in cancer cells. As a consequence, it is a high-profile validated target for new pharmaceutical development. However, no FDA-approved DNA-PK inhibitors have emerged, despite many years of drug discovery and lead optimization. This is largely because existing DNA-PK inhibitors suffer from poor pharmacokinetics. They are not well absorbed and/or are unstable, with a short plasma half-life. Here, we identified the first FDA-approved DNA-PK inhibitor by "chemical proteomics". In an effort to understand how doxycycline targets cancer stem-like cells (CSCs), we serendipitously discovered that doxycycline reduces DNA-PK protein expression by nearly 15-fold (> 90%). In accordance with these observations, we show that doxycycline functionally radio-sensitizes breast CSCs, by up to 4.5-fold. Moreover, we demonstrate that DNA-PK is highly over-expressed in both MCF7- and T47D-derived mammospheres. Interestingly, genetic or pharmacological inhibition of DNA-PK in MCF7 cells is sufficient to functionally block mammosphere formation. Thus, it appears that active DNA-repair is required for the clonal expansion of CSCs. Mechanistically, doxycycline treatment dramatically reduced the oxidative mitochondrial capacity and the glycolytic activity of cancer cells, consistent with previous studies linking DNA-PK expression to the proper maintenance of mitochondrial DNA integrity and copy number. Using a luciferase-based assay, we observed that doxycycline treatment quantitatively reduces the anti-oxidant response (NRF1/2) and effectively blocks signaling along multiple independent pathways normally associated with stem cells, including STAT1/3, Sonic Hedgehog (Shh), Notch, WNT and TGF-beta signaling. In conclusion, we propose that the efficacy of doxycycline as a DNA-PK inhibitor should be tested in Phase-II clinical trials, in combination with radio-therapy. Doxycycline has excellent pharmacokinetics, with nearly 100% oral absorption and a long serum half-life (18-22 hours), at a standard dose of 200-mg per day. In further support of this idea, we show that doxycycline effectively inhibits the mammosphere-forming activity of primary breast cancer samples, derived from metastatic disease sites (pleural effusions or ascites fluid). Our results also have possible implications for the radio-therapy of brain tumors and/or brain metastases, as doxycycline is known to effectively cross the blood-brain barrier. Further studies will be needed to determine if other tetracycline family members also confer radio-sensitivity.
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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