Trivalent arsenicals enhance UVA-associated genomic instability in human keratinocyte models

Inorganic arsenic is a well-established human carcinogen strongly associated with non-melanoma skin cancer, yet its interaction with solar radiation remains incompletely understood. Arsenic-related tumors arise preferentially in sun-exposed regions and frequently exhibit mutational patterns associated with oxidative stress rather than classical ultraviolet B signatures, implicating ultraviolet A (UVA) radiation as a potential co-exposure factor. Here, we evaluated the effects of physiologically relevant concentrations of trivalent arsenicals on UVA-associated genomic instability using keratinocyte models differing in p53 status. A multi-endpoint platform integrating comet assay kinetics, micronucleus analysis, Bliss synergy modeling, and transcriptomic profiling was used to characterize combinational responses. Sub-micromolar arsenicals alone produced minimal cytotoxicity and negligible increases in comet-detectable DNA damage. In contrast, co-exposure with UVA significantly increased chromosomal instability, particularly in p53-deficient and p53-mutant cells, despite limited additional comet signal. Repair kinetics demonstrated efficient lesion resolution in primary keratinocytes, whereas monomethylarsonous acid (MMA(III)) selectively impaired repair progression in p53-mutant HaCaT cells. Transcriptomic analysis identified altered expression of replication- and checkpoint-associated pathways in transformed keratinocytes. Across models, micronucleus formation was disproportionately elevated relative to measurable strand-break induction, indicating a dissociation between initial DNA damage and downstream genomic outcomes. Collectively, these findings support a model in which arsenicals enhance UVA-associated genomic instability by altering the processing and persistence of oxidative DNA damage rather than substantially increasing initial lesion burden.

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Publication Details

Journal
Scientific Reports
Published
2026-09-08
DOI
https://doi.org/10.1038/s41598-026-69151-9
Primary Topic
Arsenic contamination and mitigation
Type
article
Field-Weighted Citation Impact
0.00

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article

Trivalent arsenicals enhance UVA-associated genomic instability in human keratinocyte models

Scott Rosenthal, Alex Zhavoronkov, Peter Sykora, Dean S. Rosenthal et al.
Scientific Reports
Arsenic contamination and mitigation
article

Trivalent arsenicals enhance UVA-associated genomic instability in human keratinocyte models

Scott Rosenthal, Alex Zhavoronkov, Peter Sykora, Dean S. Rosenthal, Vilhelm A. Bohr, Elijah Finn, Bonnie Carney, Lucia Dussan
article en

Abstract

Inorganic arsenic is a well-established human carcinogen strongly associated with non-melanoma skin cancer, yet its interaction with solar radiation remains incompletely understood. Arsenic-related tumors arise preferentially in sun-exposed regions and frequently exhibit mutational patterns associated with oxidative stress rather than classical ultraviolet B signatures, implicating ultraviolet A (UVA) radiation as a potential co-exposure factor. Here, we evaluated the effects of physiologically relevant concentrations of trivalent arsenicals on UVA-associated genomic instability using keratinocyte models differing in p53 status. A multi-endpoint platform integrating comet assay kinetics, micronucleus analysis, Bliss synergy modeling, and transcriptomic profiling was used to characterize combinational responses. Sub-micromolar arsenicals alone produced minimal cytotoxicity and negligible increases in comet-detectable DNA damage. In contrast, co-exposure with UVA significantly increased chromosomal instability, particularly in p53-deficient and p53-mutant cells, despite limited additional comet signal. Repair kinetics demonstrated efficient lesion resolution in primary keratinocytes, whereas monomethylarsonous acid (MMA(III)) selectively impaired repair progression in p53-mutant HaCaT cells. Transcriptomic analysis identified altered expression of replication- and checkpoint-associated pathways in transformed keratinocytes. Across models, micronucleus formation was disproportionately elevated relative to measurable strand-break induction, indicating a dissociation between initial DNA damage and downstream genomic outcomes. Collectively, these findings support a model in which arsenicals enhance UVA-associated genomic instability by altering the processing and persistence of oxidative DNA damage rather than substantially increasing initial lesion burden.

Scientific Reports
University of Copenhagen (DK), Georgetown University (US), Georgetown University Medical Center (US), Applied Technologies (United States) (US)
National Institute of Environmental Health Sciences
Zero hunger
Openalex Percentile: Top 18%
Arsenic contamination and mitigation
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