Genomic Adaption and Mutational Patterns in a HaCaT Subline Resistant to Alkylating Agents and Ionizing Radiation

Reinhard Ullmann1, Benjamin Valentin Becker2, Simone Rothmiller3

  • 1Bundeswehr Institute of Radiobiology Affiliated to the University of Ulm, Neuherbergstr. 11, D-80937 Munich, Germany.

Insights

Sulfur mustard (SM) exposure created a resistant HaCaT cell line with a hyperdiploid genome and increased chromosomal translocations. This study details genetic changes from chronic alkylation and oxidative stress, offering insights into DNA damage and repair.

Area of Science:

  • Genotoxicology
  • Chemical Warfare Agents
  • Genomic Instability

Background:

  • Sulfur mustard (SM) is a genotoxic chemical warfare agent causing DNA damage via alkylation and oxidative stress.
  • SM's genotoxicity underlies its carcinogenicity and use in chemotherapy development.
  • The HaCaT keratinocyte cell line was chronically exposed to SM for 40 months to develop a resistant line (HaCaT/SM).

Purpose of the Study:

  • To compare the genomic landscape of the SM-resistant HaCaT/SM cell line with its sensitive parental HaCaT line.
  • To understand genetic alterations associated with continuous exposure to alkylation and oxidative stress.
  • To provide a genomic reference for the HaCaT cell line and its mutational signatures.

Main Methods:

  • Cytogenetics for chromosome number determination.
  • Array Comparative Genomic Hybridization (array CGH) for DNA copy number analysis.
  • Hi-C technique for detecting chromosomal translocations.
  • Whole-genome sequencing for deriving mutational signatures.

Main Results:

  • Chronic SM exposure shifted the cell population from hypotetraploid to hyperdiploid.
  • Accumulation of chromosomal translocations, often associated with DNA copy number changes, indicating DNA double-strand breaks and misrepair.
  • HaCaT/SM cells exhibited specific single-nucleotide variants, including C > A and T > A transversions, and reduced deamination of cytosines in CpG contexts.

Conclusions:

  • The development of SM resistance in HaCaT cells involves significant genomic alterations, including a shift in ploidy and increased translocations.
  • The observed mutational signatures provide insights into the DNA repair mechanisms under chronic genotoxic stress.
  • This study offers a valuable genomic dataset for HaCaT cells, relevant for toxicology and cancer research.

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