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Cyclocreatine Suppresses Creatine Metabolism and Impairs Prostate Cancer Progression
Rachana Patel1, Catriona A Ford1, Lisa Rodgers1,2
1CRUK Beatson Institute, Glasgow, United Kingdom.
Abstract:
Prostate cancer is the second most common cause of cancer mortality in men worldwide. Applying a novel genetically engineered mouse model (GEMM) of aggressive prostate cancer driven by deficiency of the tumor suppressors PTEN and Sprouty2 (SPRY2), we identified enhanced creatine metabolism as a central component of progressive disease. Creatine treatment was associated with enhanced cellular basal respiration in vitro and increased tumor cell proliferation in vivo. Stable isotope tracing revealed that intracellular levels of creatine in prostate cancer cells are predominantly dictated by exogenous availability rather than by de novo synthesis from arginine. Genetic silencing of creatine transporter SLC6A8 depleted intracellular creatine levels and reduced the colony-forming capacity of human prostate cancer cells. Accordingly, in vitro treatment of prostate cancer cells with cyclocreatine, a creatine analog, dramatically reduced intracellular levels of creatine and its derivatives phosphocreatine and creatinine and suppressed proliferation. Supplementation with cyclocreatine impaired cancer progression in the PTEN- and SPRY2-deficient prostate cancer GEMMs and in a xenograft liver metastasis model. Collectively, these results identify a metabolic vulnerability in prostate cancer and demonstrate a rational therapeutic strategy to exploit this vulnerability to impede tumor progression.
Significance:
Enhanced creatine uptake drives prostate cancer progression and confers a metabolic vulnerability to treatment with the creatine analog cyclocreatine.
Insights
Prostate cancer relies heavily on creatine uptake for growth. Targeting creatine metabolism with analogs like cyclocreatine offers a promising therapeutic strategy to impede tumor progression.
Area of Science:
- Oncology
- Metabolic Research
- Cancer Biology
Background:
- Prostate cancer is a leading cause of male cancer mortality globally.
- Tumor suppressors PTEN and Sprouty2 (SPRY2) deficiency drives aggressive prostate cancer.
- Enhanced creatine metabolism is linked to progressive prostate cancer disease.
Purpose of the Study:
- To investigate the role of creatine metabolism in prostate cancer progression.
- To identify creatine metabolism as a potential therapeutic vulnerability in prostate cancer.
- To evaluate cyclocreatine as a therapeutic agent against prostate cancer.
Main Methods:
- Utilized a genetically engineered mouse model (GEMM) of PTEN- and SPRY2-deficient prostate cancer.
- Employed stable isotope tracing to analyze creatine metabolism.
- Assessed the effects of creatine and cyclocreatine treatment in vitro and in vivo.
- Investigated the role of creatine transporter SLC6A8 in prostate cancer cells.
Main Results:
- Creatine treatment enhanced cellular respiration and tumor cell proliferation.
- Intracellular creatine levels are primarily dependent on external availability.
- Silencing SLC6A8 reduced prostate cancer cell colony formation.
- Cyclocreatine treatment suppressed prostate cancer cell proliferation and impaired tumor progression in models.
Conclusions:
- Enhanced creatine uptake is a key driver of prostate cancer progression.
- Creatine metabolism represents a significant metabolic vulnerability in prostate cancer.
- Cyclocreatine demonstrates therapeutic potential for treating prostate cancer by targeting this vulnerability.
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