Cyclocreatine suppresses prostate tumorigenesis through dual effects on SAM and creatine metabolism
Patel, R.; Rodgers, L.; Ford, C. A.; Rushworth, L.; Fleming, J.; Mui, E.; Zhang, T.; Watson, D. G.; MacKay, G.; Sumpton, D.; Sansom, O. J.; Leung, H. Y.
Show abstract
Prostate cancer is highly prevalent, being 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 PTEN and SPRY2 (Sprouty 2) tumour suppressors, we identified enhanced creatine metabolism within the phosphagen system in progressive disease. Altered creatine metabolism was validated in in vitro and in vivo prostate cancer models and in clinical cases. Upregulated creatine levels were due to increased uptake through the SLC6A8 creatine transporter and de novo synthesis, resulting in enhanced cellular basal respiration. Treatment with cyclocreatine (a creatine analogue that potently and specifically blocks the phosphagen system) dramatically reduces creatine and phosphocreatine levels. Blockade of creatine biosynthesis by cyclocreatine leads to cellular accumulation of S-adenosyl methionine (SAM), an intermediary of creatine biosynthesis, and suppresses prostate cancer growth in vitro. Furthermore, cyclocreatine treatment impairs cancer progression in our GEMM and in a xenograft liver metastasis model. Hence, by targeting the phosphagen system, cyclocreatine results in anti-tumourigenic effects from both SAM accumulation and suppressed phosphagen system.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- A feedback loop between the androgen receptor and 6-phosphogluoconate dehydrogenase (6PGD) drives prostate cancer growth 96%
- Defining cellular population dynamics at single cell resolution during prostate cancer progression 95%
- DECR1 is an androgen-repressed survival factor that regulates PUFA oxidation to protect prostate tumor cells from ferroptosis 95%
Similar papers in this journal
- Disassembly of hemidesmosomes promotes tumorigenesis in PTEN-negative prostate cancer by targeting plectin into focal adhesions 94%
- ECD, a novel androgen receptor target promotes prostate cancer tumorigenesis by regulating glycolysis 94%
- A novel role for Neurog2 in MYCN driven neuroendocrine plasticity of prostate cancer 94%
Similar papers in this journal
- Genetic Impairment of Succinate Metabolism Disrupts Bioenergetic Sensing in Adrenal Neuroendocrine Cancer 95%
- Reduced NCOR2 expression accelerates androgen deprivation therapy failure in prostate cancer 93%
- Androgen receptor inhibition induces metabolic reprogramming and increased reliance on oxidative mitochondrial metabolism in prostate cancer 93%
Similar papers in this journal
- Loss of ARID1A accelerates prostate tumourigenesis with a proliferative collagen-poor phenotype through co-operation with AP1 subunit cFos 96%
- Peroxisomal β-oxidation enzyme, DECR2, regulates lipid metabolism and promotes treatment resistance in advanced prostate cancer 95%
- Bypassing cisplatin resistance in Nrf2 hyperactivated head and neck cancer through effective PI3Kinase targeting 91%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.