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Formation of Covalent DNA Adducts by Enzymatically Activated Carcinogens and Drugs In Vitro and Their Determination by 32P-postlabeling
Published on: March 20, 2018
In vitro cytogenetic results supporting a DNA nonreactive mechanism for ochratoxin A, potentially relevant for its
Pasquale Mosesso1, Serena Cinelli, Joaquin Piñero
1Dipartimento di Agrobiologia e Agrochimica, Universita degli Studi della Tuscia, Via San Camillo de Lellis snc 01100 Viterbo, Italy. mosesso@unitus.it
Abstract:
Ochratoxin A (OTA) is a widespread mycotoxin of cereals and many agricultural products and causes high incidences of renal tumors in rodents. Although its carcinogenic properties have been known since the eighties, the precise mechanism of action is still relatively undefined. At present, increasing evidence suggests that OTA does not act with a direct genotoxic mechanism, opposed to other previous evidence where the formation of DNA adducts by 32P-postlabeling was observed. The genotoxic activity of OTA assessed in a variety of in vitro and in vivo studies was very low if genotoxic at all. In this study, we clearly show that OTA does not bear any clastogenic or aneugenic activity based on the absence of the induction of chromosome aberrations, sister chromatid exchanges, and micronuclei in human lymphocytes and V79 cells in vitro in both the absence and the presence of S9 metabolism. Alternatively, cytogenetic analyses evidenced significant increases in endoreduplicated cells and highly condensed metaphases with separated chromatids. This implies that OTA or its possible metabolites do not covalently bind DNA through the formation of adducts since structural chromosome aberrations are a very sensitive end points to detect chemical carcinogens with electrophilic substituents. Alternatively, induction of endoreduplication and chromatid separation provides strong evidence for a DNA nonreactive mechanism of OTA carcinogenicity involving the disruption of mitosis by interfering with key regulators of chromosome separation and progression of mitosis. This causes a temporary arrest of mitoses and premature exit from it (mitotic slippage) to generate endoreduplication and polyploidy accompanied by increased risk of aneuploidy and subsequent tumor formation.
Insights
Ochratoxin A (OTA), a mycotoxin found in food, does not directly damage DNA. Instead, it disrupts cell division, leading to genetic instability and potential tumor formation in rodents.
Area of Science:
- Toxicology
- Molecular Biology
- Carcinogenesis
Background:
- Ochratoxin A (OTA) is a prevalent mycotoxin linked to renal tumors in rodents.
- The precise carcinogenic mechanism of OTA remains unclear, with conflicting evidence regarding its genotoxicity.
Purpose of the Study:
- To investigate the genotoxic and non-genotoxic mechanisms underlying Ochratoxin A-induced carcinogenicity.
- To clarify whether OTA directly interacts with DNA or affects cellular processes.
Main Methods:
- Cytogenetic analyses were performed on human lymphocytes and V79 cells in vitro.
- Assays included chromosome aberrations, sister chromatid exchanges, micronuclei, and endoreduplication.
- Metabolism was assessed with and without S9 fraction.
Main Results:
- OTA did not induce clastogenic or aneugenic activity, showing no chromosome aberrations, sister chromatid exchanges, or micronuclei.
- Significant increases in endoreduplicated cells and condensed metaphases with separated chromatids were observed.
- These findings suggest OTA does not form DNA adducts.
Conclusions:
- Ochratoxin A exhibits a non-genotoxic mechanism of carcinogenicity.
- OTA disrupts mitosis, causing mitotic slippage, endoreduplication, and polyploidy, which increases the risk of aneuploidy and tumor formation.
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