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Published on: August 4, 2019
Nitrogen Mustard Alkylates and Cross-Links p53 in Human Keratinocytes
Yi-Hua Jan1, Diane E Heck2, Yunqi An3
1Department of Environmental and Occupational Health and Justice, Rutgers University School of Public Health, Piscataway, New Jersey 08854, United States.
Abstract:
Cytotoxic blistering agents such as sulfur mustard and nitrogen mustard (HN2) were synthesized for chemical warfare. Toxicity is due to reactive chloroethyl side chains that modify and damage cellular macromolecules including DNA and proteins. In response to DNA damage, cells initiate a DNA damage response directed at the recruitment and activation of repair-related proteins. A central mediator of the DNA damage response is p53, a protein that plays a critical role in regulating DNA repair. We found that HN2 causes cytosolic and nuclear accumulation of p53 in HaCaT keratinocytes; HN2 also induced post-translational modifications on p53 including S15 phosphorylation and K382 acetylation, which enhance p53 stability, promote DNA repair, and mediate cellular metabolic responses to stress. HN2 also cross-linked p53, forming dimers and high-molecular-weight protein complexes in the cells. Cross-linked multimers were also modified by K48-linked ubiquitination indicating that they are targets for proteasome degradation. HN2-induced modifications transiently suppressed the transcriptional activity of p53. Using recombinant human p53, HN2 alkylation was found to be concentration- and redox status-dependent. Dithiothreitol-reduced protein was more efficiently cross-linked indicating that p53 cysteine residues play a key role in protein modification. LC-MS/MS analysis revealed that HN2 directly alkylated p53 at C124, C135, C141, C176, C182, C275, C277, H115, H178, K132, and K139, forming both monoadducts and cross-links. The formation of intermolecular complexes was a consequence of HN2 cross-linked cysteine residues between two molecules of p53. Together, these data demonstrate that p53 is a molecular target for mustard vesicants. Modification of p53 likely mediates cellular responses to HN2 including DNA repair and cell survival contributing to vesicant-induced cytotoxicity.
Insights
Nitrogen mustard (HN2) directly targets the p53 protein, causing modifications and cross-linking. These changes affect DNA repair and cell survival, contributing to the toxicity of chemical warfare agents.
Area of Science:
- Biochemistry
- Molecular Biology
- Toxicology
Background:
- Cytotoxic blistering agents like nitrogen mustard (HN2) are chemical warfare agents.
- These agents damage cellular macromolecules via reactive chloroethyl side chains.
- The p53 protein is a key regulator of the DNA damage response and cellular repair mechanisms.
Purpose of the Study:
- To investigate the molecular interactions between HN2 and the p53 protein.
- To elucidate how HN2 affects p53's stability, function, and cellular localization.
- To determine if p53 is a direct molecular target of HN2 alkylation.
Main Methods:
- Treatment of HaCaT keratinocytes with HN2.
- Analysis of p53 protein modifications (phosphorylation, acetylation, ubiquitination, cross-linking) using Western blotting and mass spectrometry (LC-MS/MS).
- Studies using recombinant human p53 to assess direct alkylation by HN2.
Main Results:
- HN2 induced cytosolic and nuclear accumulation of p53.
- HN2 caused post-translational modifications including S15 phosphorylation and K382 acetylation, enhancing p53 stability.
- HN2 directly alkylated p53 at specific cysteine and histidine residues, forming monoadducts and cross-links, leading to protein complex formation and transient suppression of transcriptional activity.
Conclusions:
- p53 is a direct molecular target for nitrogen mustard (HN2).
- HN2-induced modifications and cross-linking of p53 play a role in cellular responses, including DNA repair and cell survival.
- These modifications contribute to the overall cytotoxicity of vesicant agents.
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