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Updated: Jul 27, 2025

The Lambda Select cII Mutation Detection System
Published on: April 26, 2018
Acrylonitrile's genotoxicity profile: mutagenicity in search of an underlying molecular mechanism
Richard J Albertini1, Christopher R Kirman2, Dale E Strother3
1Independent Consultant, Burlington, Vermont, USA.
Abstract:
Acrylonitrile (ACN) is a known rodent and possible human carcinogen. There have also been concerns as to it causing adverse reproductive health effects. Numerous genotoxicity studies at the somatic level in a variety of test systems have demonstrated ACN's mutagenicity; its potential to induce mutations in germ cells has also been evaluated. ACN is metabolized to reactive intermediates capable of forming adducts with macromolecules including DNA, a necessary first step in establishing a direct mutagenic mode of action (MOA) for its carcinogenicity. The mutagenicity of ACN has been well demonstrated, however, numerous studies have found no evidence for the capacity of ACN to induce direct DNA lesions that initiate the mutagenic process. Although ACN and its oxidative metabolite (2-cyanoethylene oxide or CNEO) have been shown to bind in vitro with isolated DNA and associated proteins, usually under non-physiological conditions, studies in mammalian cells or in vivo have provided little specification as to an ACN-DNA reaction. Only one early study in rats has shown an ACN/CNEO DNA adduct in liver, a non-target tissue for its carcinogenicity in the rat. By contrast, numerous studies have shown that ACN can act indirectly to induce at least one DNA adduct by forming reactive oxygen species (ROS) in vivo, but it has not been definitively shown that the resulting DNA damage is causative for the induction of mutations. Genotoxicity studies for ACN in somatic and germinal cells are summarized and critically reviewed. Significant data gaps have been identified for bringing together the massive data base that provides the basis of ACN's current genotoxicity profile.
Insights
Acrylonitrile (ACN) is a mutagen, but evidence for direct DNA damage initiating its carcinogenicity is limited. Further research is needed to address data gaps in its genotoxicity profile.
Area of Science:
- Toxicology
- Genetics
- Carcinogenesis
Background:
- Acrylonitrile (ACN) is a known rodent carcinogen with suspected human carcinogenicity.
- Concerns exist regarding ACN's potential adverse reproductive health effects.
- ACN's mutagenicity is established, but its direct mutagenic mode of action (MOA) is debated.
Purpose of the Study:
- To critically review genotoxicity studies of ACN in somatic and germinal cells.
- To identify data gaps in understanding ACN's genotoxicity profile.
- To evaluate the evidence for ACN's direct and indirect mutagenic mechanisms.
Main Methods:
- Literature review and critical analysis of existing genotoxicity studies on ACN.
- Examination of studies investigating ACN metabolism and DNA adduct formation.
- Assessment of evidence for reactive oxygen species (ROS) generation by ACN.
Main Results:
- ACN's mutagenicity is well-demonstrated in various test systems.
- Limited evidence supports direct DNA lesions initiated by ACN or its metabolite (2-cyanoethylene oxide, CNEO).
- ACN can indirectly induce DNA adducts via ROS, but causality for mutations remains unproven.
Conclusions:
- Significant data gaps hinder a comprehensive understanding of ACN's genotoxicity.
- The direct mutagenic MOA of ACN's carcinogenicity requires further investigation.
- Clarifying ACN's genotoxic mechanisms is crucial for risk assessment.
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