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Detection and Visualization of DNA Damage-induced Protein Complexes in Suspension Cell Cultures Using the Proximity Ligation Assay
Published on: June 9, 2017
DNA-protein cross-links produced by various chemicals in cultured human lymphoma cells
M Costa1, A Zhitkovich, M Harris
1Institute of Environmental Medicine, New York University Medical Center, New York 10016, USA. costam@charlotte.med.nyu.edu
Abstract:
Chemicals such as cis-platinum, formaldehyde, chromate, copper, and certain arsenic compounds have been shown to produce DNA-protein cross-links in human in vitro cell systems at high doses, such as those in the cytotoxic range. Thus far there have only been a limited number of other chemicals evaluated for their ability to produce cross-links. The purpose of the work described here was to evaluate whether select industrial chemicals can form DNA-protein cross-links in human cells in vitro. We evaluated acetaldehyde, acrolein, diepoxybutane, paraformaldehyde, 2-furaldehyde, propionaldehyde, chloroacetaldehyde, sodium arsenite, and a deodorant tablet [Mega Blue; hazardous component listed as tris(hydroxymethyl)nitromethane]. Short- and long-term cytotoxicity was evaluated and used to select appropriate doses for in vitro testing. DNA-protein cross-linking was evaluated at no fewer than three doses and two cell lysate washing temperatures (45 and 65 degrees C) in Epstein-Barr virus (EBV) human Burkitt's lymphoma cells. The two washing temperatures were used to assess the heat stability of the DNA-protein cross-link, 2-Furaldehyde, acetaldehyde, and propionaldehyde produced statistically significant increases in DNA-protein cross-links at washing temperatures of 45 degrees C, but not 65 degrees C, and at or above concentrations of 5, 17.5, and 75 mM, respectively. Acrolein, diepoxybutane, paraformaldehyde, and Mega Blue produced statistically significant increases in DNA-protein cross-links washed at 45 and 65 degrees C at or above concentrations of 0.15 mM, 12.5 mM, 0.003%, and 0.1%, respectively. Sodium arsenite and chloroacetaldehyde did not produce significantly increased DNA-protein cross-links at either temperature nor at any dose tested. Excluding paraformaldehyde and 2-furaldehyde treatments, significant increases in DNA-protein cross-links were observed only at doses that resulted in complete cell death within 4 d following dosing. This work demonstrates that DNA-protein cross-links can be formed in vitro following exposure to a variety of industrial compounds and that most cross-links are formed at cytotoxic concentrations.
Insights
This study found that several industrial chemicals, including aldehydes and acrolein, can create DNA-protein cross-links in human cells. Most cross-links were formed at cytotoxic doses, indicating potential cellular damage from these compounds.
Area of Science:
- Toxicology
- Molecular Biology
- Environmental Health
Background:
- DNA-protein cross-links (DPCs) are harmful DNA adducts.
- Previous studies identified DPC formation by select chemicals like cis-platinum.
- Limited data exists on DPC induction by common industrial chemicals.
Purpose of the Study:
- To investigate the potential of industrial chemicals to induce DNA-protein cross-links in human cells.
- To evaluate a panel of industrial chemicals for their ability to form DPCs in vitro.
- To assess the dose-response and heat stability of induced DPCs.
Main Methods:
- Cytotoxicity assays were performed to determine safe dose ranges.
- DNA-protein cross-linking was assessed in Epstein-Barr virus (EBV) human Burkitt's lymphoma cells.
- DPC induction was evaluated at multiple doses and two washing temperatures (45°C and 65°C).
Main Results:
- Acetaldehyde, 2-furaldehyde, and propionaldehyde induced DPCs at 45°C but not 65°C, at cytotoxic concentrations.
- Acrolein, diepoxybutane, paraformaldehyde, and Mega Blue induced DPCs at both temperatures, often at cytotoxic levels.
- Sodium arsenite and chloroacetaldehyde did not significantly induce DPCs at tested doses and temperatures.
Conclusions:
- Several industrial chemicals, including aldehydes and acrolein, can form DNA-protein cross-links in human cells in vitro.
- Most observed DPC formation occurred at cytotoxic concentrations, suggesting a link to cell death.
- The heat stability of DPCs varied among the tested chemicals.

