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Elevated Methionine Flux Drives Pyroptosis Evasion in Persister Cancer Cells
Asmaa El-Kenawi1,2, Anders Berglund3, Veronica Estrella2,4
1Department of Radiation Oncology, H. Lee Moffitt Cancer Center, Tampa, Florida.
Abstract:
Induction of cell death represents a primary goal of most anticancer treatments. Despite the efficacy of such approaches, a small population of "persisters" develop evasion strategies to therapy-induced cell death. While previous studies have identified mechanisms of resistance to apoptosis, the mechanisms by which persisters dampen other forms of cell death, such as pyroptosis, remain to be elucidated. Pyroptosis is a form of inflammatory cell death that involves formation of membrane pores, ion gradient imbalance, water inflow, and membrane rupture. Herein, we investigate mechanisms by which cancer persisters resist pyroptosis, survive, then proliferate in the presence of tyrosine kinase inhibitors (TKI). Lung, prostate, and esophageal cancer persister cells remaining after treatments exhibited several hallmarks indicative of pyroptosis resistance. The inflammatory attributes of persisters included chronic activation of inflammasome, STING, and type I interferons. Comprehensive metabolomic characterization uncovered that TKI-induced pyroptotic persisters display high methionine consumption and excessive taurine production. Elevated methionine flux or exogenous taurine preserved plasma membrane integrity via osmolyte-mediated effects. Increased dependency on methionine flux decreased the level of one carbon metabolism intermediate S-(5'-adenosyl)-L-homocysteine, a determinant of cell methylation capacity. The consequent increase in methylation potential induced DNA hypermethylation of genes regulating metal ion balance and intrinsic immune response. This enabled thwarting TKI resistance by using the hypomethylating agent decitabine. In summary, the evolution of resistance to pyroptosis can occur via a stepwise process of physical acclimation and epigenetic changes without existing or recurrent mutations.
Significance:
Methionine enables cancer cells to persist by evading pyroptotic osmotic lysis, which leads to genome-wide hypermethylation that allows persisters to gain proliferative advantages.
Insights
Cancer persisters evade pyroptosis, a form of inflammatory cell death, by altering metabolism. Methionine consumption and taurine production lead to DNA hypermethylation, enabling survival and proliferation without mutations.
Area of Science:
- Oncology
- Cell Biology
- Metabolomics
Background:
- Anticancer treatments aim to induce cell death, but cancer persisters evade therapy.
- Mechanisms of resistance to apoptosis are known, but resistance to pyroptosis is not well understood.
- Pyroptosis is an inflammatory cell death pathway involving membrane pore formation and lysis.
Purpose of the Study:
- Investigate how cancer persisters resist pyroptosis induced by tyrosine kinase inhibitors (TKIs).
- Identify metabolic and epigenetic changes associated with pyroptosis resistance in cancer persisters.
- Determine if these changes contribute to therapy resistance and cancer cell proliferation.
Main Methods:
- Cultured lung, prostate, and esophageal cancer cell lines.
- Treatment with TKIs to select for persister cells.
- Metabolomic profiling to analyze metabolic changes.
- Assays to measure plasma membrane integrity and cell methylation capacity.
- Analysis of DNA methylation patterns.
Main Results:
- TKI-induced pyroptotic persisters showed resistance to pyroptosis.
- Persisters exhibited chronic activation of inflammasome, STING, and type I interferons.
- Persisters consumed high levels of methionine and produced excessive taurine.
- Elevated methionine flux preserved plasma membrane integrity via osmolyte effects.
- Increased methylation potential led to DNA hypermethylation of key genes.
- Decitabine, a hypomethylating agent, reversed TKI resistance.
Conclusions:
- Cancer persisters can resist pyroptosis through metabolic and epigenetic reprogramming.
- Methionine metabolism and taurine production are critical for pyroptosis resistance.
- Epigenetic changes, specifically DNA hypermethylation, enable survival and proliferation.
- Resistance can evolve without new mutations, highlighting a stepwise adaptation process.
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