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Published on: July 3, 2015
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.
Abstract:
Sulfur mustard (SM) is a chemical warfare agent that can damage DNA via alkylation and oxidative stress. Because of its genotoxicity, SM is cancerogenic and the progenitor of many chemotherapeutics. Previously, we developed an SM-resistant cell line via chronic exposure of the popular keratinocyte cell line HaCaT to increasing doses of SM over a period of 40 months. In this study, we compared the genomic landscape of the SM-resistant cell line HaCaT/SM to its sensitive parental line HaCaT in order to gain insights into genetic changes associated with continuous alkylation and oxidative stress. We established chromosome numbers by cytogenetics, analyzed DNA copy number changes by means of array Comparative Genomic Hybridization (array CGH), employed the genome-wide chromosome conformation capture technique Hi-C to detect chromosomal translocations, and derived mutational signatures by whole-genome sequencing. We observed that chronic SM exposure eliminated the initially prevailing hypotetraploid cell population in favor of a hyperdiploid one, which contrasts with previous observations that link polyploidization to increased tolerance and adaptability toward genotoxic stress. Furthermore, we observed an accumulation of chromosomal translocations, frequently flanked by DNA copy number changes, which indicates a high rate of DNA double-strand breaks and their misrepair. HaCaT/SM-specific single-nucleotide variants showed enrichment of C > A and T > A transversions and a lower rate of deaminated cytosines in the CpG dinucleotide context. Given the frequent use of HaCaT in toxicology, this study provides a valuable data source with respect to the original genotype of HaCaT and the mutational signatures associated with chronic alkylation and oxidative stress.
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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