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Overcoming statin resistance in prostate cancer cells by targeting the 3-hydroxy-3-methylglutaryl-CoA-reductase
Andy Göbel1, Sophie Pählig1, Anja Motz2
1Mildred Scheel Early Career Center, Division of Endocrinology and Metabolic Bone Diseases, Department of Medicine III, Technische Universität Dresden, Dresden, Germany; Center for Healthy Ageing, Department of Medicine III, Technische Universität Dresden, Dresden, Germany; German Cancer Consortium (DKTK), Dresden and German Cancer Research Center (DKFZ), Heidelberg, Germany.
Abstract:
Prostate cancer is the most prevalent malignancy in men. While diagnostic and therapeutic interventions have substantially improved in recent years, disease relapse, treatment resistance, and metastasis remain significant contributors to prostate cancer-related mortality. Therefore, novel therapeutic approaches are needed. Statins are inhibitors of the 3-hydroxy-3-methylglutaryl-CoA reductase (HMGCR), the rate-limiting enzyme of the mevalonate pathway which plays an essential role in cholesterol homeostasis. Numerous preclinical studies have provided evidence for the pleiotropic antitumor effects of statins. However, results from clinical studies remain controversial and have shown substantial benefits to even no effects on human malignancies including prostate cancer. Potential statin resistance mechanisms of tumor cells may account for such discrepancies. In our study, we treated human prostate cancer cell lines (PC3, C4-2B, DU-145, LNCaP) with simvastatin, atorvastatin, and rosuvastatin. PC3 cells demonstrated high statin sensitivity, resulting in a significant loss of vitality and clonogenic potential (up to - 70%; p < 0.001) along with an activation of caspases (up to 4-fold; p < 0.001). In contrast, C4-2B and DU-145 cells were statin-resistant. Statin treatment induced a restorative feedback in statin-resistant C4-2B and DU-145 cells through upregulation of the HMGCR gene and protein expression (up to 3-folds; p < 0.01) and its transcription factor sterol-regulatory element binding protein 2 (SREBP-2). This feedback was absent in PC3 cells. Blocking the feedback using HMGCR-specific small-interfering (si)RNA, the SREBP-2 activation inhibitor dipyridamole or the HMGCR degrader SR12813 abolished statin resistance in C4-2B and DU-145 and induced significant activation of caspases by statin treatment (up to 10-fold; p < 0.001). Consistently, long-term treatment with sublethal concentrations of simvastatin established a stable statin resistance of a PC3SIM subclone accompanied by a significant upregulation of both baseline as well as post-statin HMGCR protein (gene expression up to 70-fold; p < 0.001). Importantly, the statin-resistant phenotype of PC3SIM cells was reversible by HMGCR-specific siRNA and dipyridamole. Our investigations reveal a key role of a restorative feedback driven by the HMGCR/SREBP-2 axis in statin resistance mechanisms of prostate cancer cells.
Insights
Statins show varied effects on prostate cancer cells, with some developing resistance. Targeting the HMGCR/SREBP-2 pathway can overcome this resistance, offering new therapeutic strategies for prostate cancer treatment.
Area of Science:
- Oncology
- Biochemistry
- Molecular Biology
Background:
- Prostate cancer remains a leading cause of cancer mortality in men.
- Despite advances, treatment resistance and metastasis are significant challenges.
- Statins, inhibitors of 3-hydroxy-3-methylglutaryl-CoA reductase (HMGCR), have shown preclinical antitumor effects, but clinical results are controversial.
Purpose of the Study:
- To investigate the mechanisms of statin resistance in prostate cancer cells.
- To evaluate the role of the HMGCR/SREBP-2 axis in mediating statin resistance.
- To explore therapeutic strategies to overcome statin resistance in prostate cancer.
Main Methods:
- Treatment of human prostate cancer cell lines (PC3, C4-2B, DU-145, LNCaP) with simvastatin, atorvastatin, and rosuvastatin.
- Assessment of cell vitality, clonogenic potential, and caspase activation.
- Analysis of HMGCR and sterol-regulatory element binding protein 2 (SREBP-2) expression.
- Inhibition of the HMGCR/SREBP-2 pathway using siRNA, dipyridamole, and SR12813.
- Development and characterization of a simvastatin-resistant PC3 subclone (PC3SIM).
Main Results:
- PC3 cells were sensitive to statins, showing reduced vitality and clonogenic potential.
- C4-2B and DU-145 cells exhibited statin resistance, characterized by HMGCR/SREBP-2 upregulation.
- Inhibition of the HMGCR/SREBP-2 feedback loop restored statin sensitivity in resistant cells.
- A stable statin-resistant PC3SIM subclone displayed significantly upregulated HMGCR expression, which was reversible.
Conclusions:
- A restorative feedback mechanism involving the HMGCR/SREBP-2 axis is crucial for statin resistance in prostate cancer.
- Targeting this feedback loop can re-sensitize resistant prostate cancer cells to statins.
- This study identifies a key pathway for overcoming statin resistance and suggests potential therapeutic avenues for prostate cancer.
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