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Published on: December 26, 2016
Inhibition of O-GlcNAc transferase activity reprograms prostate cancer cell metabolism
Harri M Itkonen1, Saurabh S Gorad2,3, Damien Y Duveau4
1Prostate Cancer Research Group, Centre for Molecular Medicine (Norway), University of Oslo and Oslo University Hospitals, Gaustadalleen, Oslo, Norway.
Abstract:
Metabolic networks are highly connected and complex, but a single enzyme, O-GlcNAc transferase (OGT) can sense the availability of metabolites and also modify target proteins. We show that inhibition of OGT activity inhibits the proliferation of prostate cancer cells, leads to sustained loss of c-MYC and suppresses the expression of CDK1, elevated expression of which predicts prostate cancer recurrence (p=0.00179). Metabolic profiling revealed decreased glucose consumption and lactate production after OGT inhibition. This decreased glycolytic activity specifically sensitized prostate cancer cells, but not cells representing normal prostate epithelium, to inhibitors of oxidative phosphorylation (rotenone and metformin). Intra-cellular alanine was depleted upon OGT inhibitor treatment. OGT inhibitor increased the expression and activity of alanine aminotransferase (GPT2), an enzyme that can be targeted with a clinically approved drug, cycloserine. Simultaneous inhibition of OGT and GPT2 inhibited cell viability and growth rate, and additionally activated a cell death response. These combinatorial effects were predominantly seen in prostate cancer cells, but not in a cell-line derived from normal prostate epithelium. Combinatorial treatments were confirmed with two inhibitors against both OGT and GPT2. Taken together, here we report the reprogramming of energy metabolism upon inhibition of OGT activity, and identify synergistically lethal combinations that are prostate cancer cell specific.
Insights
Inhibiting O-GlcNAc transferase (OGT) in prostate cancer cells disrupts metabolism, sensitizing them to other drugs. This approach offers a targeted strategy for treating prostate cancer.
Area of Science:
- Molecular Biology
- Cancer Metabolism
- Biochemistry
Background:
- Metabolic networks are complex, but O-GlcNAc transferase (OGT) acts as a key sensor and modifier.
- OGT's role in prostate cancer's metabolic reprogramming and therapeutic potential is under investigation.
Purpose of the Study:
- To investigate the effects of OGT inhibition on prostate cancer cell proliferation and metabolism.
- To identify novel, prostate cancer-specific therapeutic targets and drug combinations.
Main Methods:
- Inhibition of O-GlcNAc transferase (OGT) activity in prostate cancer cell lines.
- Metabolic profiling to assess changes in glucose consumption and lactate production.
- Analysis of key protein expression (c-MYC, CDK1) and intracellular metabolites (alanine).
- Testing combinatorial treatments with OGT and alanine aminotransferase (GPT2) inhibitors.
Main Results:
- OGT inhibition suppressed prostate cancer cell proliferation, reduced c-MYC and CDK1 expression, and decreased glucose metabolism.
- Prostate cancer cells treated with OGT inhibitors showed increased sensitivity to oxidative phosphorylation inhibitors.
- Simultaneous inhibition of OGT and GPT2 led to synergistic lethality in prostate cancer cells, but not normal cells.
Conclusions:
- OGT inhibition reprograms energy metabolism in prostate cancer cells, creating specific vulnerabilities.
- Combinations targeting OGT and GPT2 represent a promising, prostate cancer-specific therapeutic strategy.
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