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Updated: Jun 21, 2026

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
Cellular pathways for DNA repair and damage tolerance of formaldehyde-induced DNA-protein crosslinks
Bendert de Graaf1, Adam Clore, Amanda K McCullough
1Department of Molecular and Medical Genetics, Center for Research on Occupational and Environmental Toxicology, Oregon Health & Science University, Portland, 97239, USA.
Abstract:
Although it is well established that DNA-protein crosslinks are formed as a consequence of cellular exposure to agents such as formaldehyde, transplatin, ionizing and ultraviolet radiation, the biochemical pathways that promote cellular survival via repair or tolerance of these lesions are poorly understood. To investigate the mechanisms that function to limit DNA-protein crosslink-induced cytotoxicity, the Saccharomyces cerevisiae non-essential gene deletion library was screened for increased sensitivity to formaldehyde exposure. Following low dose, chronic exposure, strains containing deletions in genes mediating homologous recombination showed the greatest sensitivity, while under the same exposure conditions, deletions in genes associated with nucleotide excision repair conferred only low to moderate sensitivities. However, when the exposure regime was changed to a high dose acute (short-term) formaldehyde treatment, the genes that conferred maximal survival switched to the nucleotide excision repair pathway, with little contribution of the homologous recombination genes. Data are presented which suggest that following acute formaldehyde exposure, repair and/or tolerance of DNA-protein crosslinks proceeds via formation of nucleotide excision repair-dependent single-strand break intermediates and without a detectable accumulation of double-strand breaks. These data clearly demonstrate a differential pathway response to chronic versus acute formaldehyde exposures and may have significance and implications for risk extrapolation in human exposure studies.
Insights
DNA-protein crosslinks are repaired differently depending on formaldehyde exposure duration. Acute exposure relies on nucleotide excision repair, while chronic exposure involves homologous recombination, impacting cellular survival and risk assessment.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- DNA-protein crosslinks (DPCs) arise from exposure to agents like formaldehyde.
- Cellular repair and tolerance mechanisms for DPCs are not fully understood.
- DPCs can induce cytotoxicity, necessitating investigation into survival pathways.
Purpose of the Study:
- To identify genes and pathways involved in DNA-protein crosslink repair and tolerance.
- To investigate differential cellular responses to chronic versus acute formaldehyde exposure.
- To elucidate mechanisms limiting DPC-induced cytotoxicity in Saccharomyces cerevisiae.
Main Methods:
- Screening of the Saccharomyces cerevisiae non-essential gene deletion library for formaldehyde sensitivity.
- Comparative analysis of gene deletion sensitivities under chronic low-dose and acute high-dose formaldehyde exposure.
- Assessment of DNA repair pathway involvement (homologous recombination vs. nucleotide excision repair).
Main Results:
- Homologous recombination genes were crucial for survival under chronic formaldehyde exposure.
- Nucleotide excision repair genes became essential for survival under acute formaldehyde exposure.
- Acute formaldehyde exposure suggests DPC repair via nucleotide excision repair-dependent single-strand break intermediates without significant double-strand break accumulation.
Conclusions:
- Cellular response to DNA-protein crosslinks is exposure-dependent (chronic vs. acute).
- Distinct repair pathways mediate survival under different formaldehyde exposure scenarios.
- Findings have implications for human risk assessment of formaldehyde exposure.
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