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Published on: June 5, 2020
Mode of action-based risk assessment of genotoxic carcinogens
Andrea Hartwig1, Michael Arand2, Bernd Epe3
1Department of Food Chemistry and Toxicology, Institute of Applied Biosciences (IAB), Karlsruhe Institute of Technology (KIT), Adenauerring 20a, 76131, Karlsruhe, Germany. andrea.hartwig@kit.edu.
Abstract:
The risk assessment of chemical carcinogens is one major task in toxicology. Even though exposure has been mitigated effectively during the last decades, low levels of carcinogenic substances in food and at the workplace are still present and often not completely avoidable. The distinction between genotoxic and non-genotoxic carcinogens has traditionally been regarded as particularly relevant for risk assessment, with the assumption of the existence of no-effect concentrations (threshold levels) in case of the latter group. In contrast, genotoxic carcinogens, their metabolic precursors and DNA reactive metabolites are considered to represent risk factors at all concentrations since even one or a few DNA lesions may in principle result in mutations and, thus, increase tumour risk. Within the current document, an updated risk evaluation for genotoxic carcinogens is proposed, based on mechanistic knowledge regarding the substance (group) under investigation, and taking into account recent improvements in analytical techniques used to quantify DNA lesions and mutations as well as "omics" approaches. Furthermore, wherever possible and appropriate, special attention is given to the integration of background levels of the same or comparable DNA lesions. Within part A, fundamental considerations highlight the terms hazard and risk with respect to DNA reactivity of genotoxic agents, as compared to non-genotoxic agents. Also, current methodologies used in genetic toxicology as well as in dosimetry of exposure are described. Special focus is given on the elucidation of modes of action (MOA) and on the relation between DNA damage and cancer risk. Part B addresses specific examples of genotoxic carcinogens, including those humans are exposed to exogenously and endogenously, such as formaldehyde, acetaldehyde and the corresponding alcohols as well as some alkylating agents, ethylene oxide, and acrylamide, but also examples resulting from exogenous sources like aflatoxin B1, allylalkoxybenzenes, 2-amino-3,8-dimethylimidazo[4,5-f] quinoxaline (MeIQx), benzo[a]pyrene and pyrrolizidine alkaloids. Additionally, special attention is given to some carcinogenic metal compounds, which are considered indirect genotoxins, by accelerating mutagenicity via interactions with the cellular response to DNA damage even at low exposure conditions. Part C finally encompasses conclusions and perspectives, suggesting a refined strategy for the assessment of the carcinogenic risk associated with an exposure to genotoxic compounds and addressing research needs.
Insights
This study proposes an updated risk evaluation for genotoxic carcinogens, integrating mechanistic knowledge and advanced analytical techniques. It refines cancer risk assessment by considering DNA damage and background lesion levels for better toxicological evaluations.
Area of Science:
- Toxicology and Carcinogenesis
- Genotoxicology
- Risk Assessment
Background:
- Chemical carcinogen risk assessment remains crucial due to unavoidable low-level exposures.
- Genotoxic carcinogens pose risks at all concentrations, unlike non-genotoxic carcinogens assumed to have thresholds.
- Distinguishing between genotoxic and non-genotoxic mechanisms is vital for accurate risk evaluation.
Purpose of the Study:
- To propose an updated risk evaluation strategy for genotoxic carcinogens.
- To integrate mechanistic knowledge, advanced analytical techniques, and omics approaches.
- To consider background DNA lesion levels in risk assessment.
Main Methods:
- Review of fundamental concepts: hazard vs. risk, DNA reactivity of genotoxic agents.
- Description of current methodologies in genetic toxicology and exposure dosimetry.
- Elucidation of modes of action (MOA) and the relationship between DNA damage and cancer risk.
Main Results:
- Analysis of specific genotoxic carcinogens (e.g., formaldehyde, acrylamide, aflatoxin B1, benzo[a]pyrene).
- Consideration of endogenously and exogenously encountered genotoxins.
- Evaluation of carcinogenic metal compounds as indirect genotoxins affecting DNA damage response.
Conclusions:
- A refined strategy for assessing carcinogenic risk from genotoxic compounds is suggested.
- The importance of mechanistic understanding and advanced analytical methods is highlighted.
- Identified research needs for improved genotoxic risk assessment.
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