The Walker 256 carcinoma: a cell type inherently sensitive only to those difunctional agents that can form DNA

R J Knox1, D A Lydall, F Friedlos

  • 1Molecular Pharmacology Unit, Institute of Cancer Research, Sutton, Surrey, Great Britain.

Mutation Research
|November 1, 1991
PubMed

Insights

Walker tumor cells (WS) are sensitive to DNA interstrand crosslinks, a characteristic that is recessive and similar to Fanconi

Area of Science:

  • Cancer Research
  • Molecular Biology
  • Genetics

Background:

  • The Walker 256 rat tumor has been a long-standing model for screening anticancer agents.
  • This tumor model is known to be sensitive to difunctional alkylating agents.
  • A derived cell line, WS, retains this sensitivity, while a resistant line, WR, serves as a control.

Purpose of the Study:

  • To characterize the phenotype of the WS cell line compared to the resistant WR cell line.
  • To identify the specific type of DNA damage that WS cells are sensitive to.
  • To investigate the genetic basis of this sensitivity.

Main Methods:

  • Comparative analysis of WS and WR cell line responses to various cytotoxic agents.
  • Assessment of drug binding to DNA in both cell lines.
  • Analysis of DNA interstrand crosslink formation.
  • Cell fusion experiments between WS and WR cells.
  • Transfection experiments using human DNA in WS cells.

Main Results:

  • WS cells exhibit heightened sensitivity exclusively to difunctional agents that form DNA interstrand crosslinks.
  • No significant differences in drug uptake or DNA binding were observed between WS and WR cells.
  • Sensitivity to DNA interstrand crosslinks is a recessive trait in WS cells.
  • Resistant clones emerged after transfection, suggesting complementation or reversion.

Conclusions:

  • Walker tumor cells (WS) possess an intrinsic sensitivity to DNA interstrand crosslinks, likely due to a defect in late-stage crosslink repair.
  • This phenotype closely resembles Fanconi's anemia patient cells and yeast snm1 mutants.
  • The sensitivity is recessive and does not involve DNA excision repair mechanisms.

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