Txn-Txnrd1 system supports redox rewiring during polyaneuploid transition and protects giant cancer cells at new redox homeostasis

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Abstract

Polyaneuploid giant cells (PGCC), which occur more frequently in TP53 -mutant tumors, are recognized as a driver of tumor recurrence and therapy resistance, but the mechanisms supporting their survival remain largely unknown. Our results indicate that polyaneuploid transition and subsequent PGCC maturation in drug-resistant phenotypes are associated with redox rewiring that shifts cellular homeostasis into mild pro-oxidative condition. These are accompanied by increased transcription of genes involved in protection against elevated reactive oxygen species and glutathione-dependent xenobiotic detoxification such as TXN , PRDX2/5 , GPX1 , and GSTP1/GSTO1 . Functional studies provided evidence on the crucial role of Txn-Txnrd1 system in maintaining PGCC viability and their adaptation to increased level of reactive oxygen species. Pharmacological targeting of Txn or Txnrd1 as well as their silencing caused a decline in thiol content followed by further redox imbalance, which led to massive death of PGCC. Analysis of clinical datasets revealed direct and relatively strong link between transcription of TP53 and TXN or TXNRD1 . Tumors with TP53 low / TXN high or TP53 low / TXNRD1 high were associated with considerably poorer patient outcome, whereas elevated transcription of both TXN and TXNRD1 predicted reduced response to chemotherapy in glioblastoma and intestinal cancer. Concluding, Txn-Txnrd1 system enables PGCCs to tolerate pro-oxidative condition, thereby creating a therapeutically exploitable redox vulnerability of these cells, where Txnrd1 emerges as a potential target candidate to overcome PGCC-driven chemoresistance.

Highlights

  • Polyaneuploid transition is associated with redox rewiring into more oxidative condition

  • Txn-Txnrd1 system is crucial for new redox homeostasis

  • Survival of mature PGCC is critically dependent on the Txn-Txnrd1 axis

  • TP53 -low tumors with high expression of TXN or TXNRD1 show poorer clinical outcome

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