Schlafen 11 (SLFN11), a restriction factor for replicative stress induced by DNA-targeting anti-cancer therapies

Junko Murai1, Anish Thomas1, Markku Miettinen2

  • 1Developmental Therapeutics Branch and Laboratory of Molecular Pharmacology, Center for Cancer Research, National Cancer Institute, Bethesda, MD, USA.

Insights

Schlafen 11 (SLFN11) sensitizes cancer cells to DNA-damaging drugs by blocking replication stress. Measuring SLFN11 expression predicts treatment response and resistance, offering new therapeutic strategies.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • Schlafen 11 (SLFN11) is a protein that sensitizes cells to various DNA-damaging anti-cancer drugs.
  • Many anti-cancer drugs, including platinum derivatives and PARP inhibitors, induce replication stress by damaging DNA during the S-phase.
  • SLFN11 plays a crucial role in cellular response to replication stress.

Purpose of the Study:

  • To elucidate the mechanism by which SLFN11 sensitizes cells to DNA-targeting cancer therapies.
  • To investigate the translational relevance of SLFN11 as a predictive biomarker for anti-cancer drug response.
  • To explore SLFN11 as a potential therapeutic target for overcoming drug resistance.

Main Methods:

  • Analysis of SLFN11's role in replication stress response.
  • Assessment of SLFN11 expression in cancer cell lines and tumors.
  • Evaluation of SLFN11's correlation with immune responses and therapeutic outcomes.

Main Results:

  • SLFN11 irreversibly blocks replication under replication stress, leading to enhanced cancer cell killing by DNA-targeting drugs.
  • SLFN11 is inactivated in approximately 50% of cancer cell lines and a significant fraction of tumors.
  • SLFN11 expression is linked to native immune, interferon, and T-cell responses.

Conclusions:

  • SLFN11 is a key determinant of sensitivity to DNA-targeting anti-cancer drugs.
  • Measuring SLFN11 expression can serve as a predictive biomarker for treatment response and resistance.
  • SLFN11 is a potential epigenetic target for reactivation, and its absence indicates potential for checkpoint inhibitor combinations.

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