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Analysis of the Ambient Particulate Matter-induced Chromosomal Aberrations Using an In Vitro System
Published on: December 21, 2016
Mutagenicity of halogenated and oxygenated three-carbon compounds
Abstract:
Four structurally related three-carbon compounds, known for their antifertility activity in the male, and the brominated derivatives of two of these compounds were tested for mutagenic activity by the Salmonella typhimurium test of Ames et al. In the presence of strain TA-100, a base-pair substituion detector strain, 1,2-dibromo-3-chloropropane (DBCP), was the most active compound tested but required enzymatic conversion by 59 microsomal preparation to an active mutagen. Three of these compounds containing an epoxide group-epichlorohydrin, epibromohydrin, and glycidol-were highly active direct mutagens, not requiring 59 for activation, alpha-Chlorohydrin was the least active compound tested; alpha-bromohydrin was 40 times more active than its chlorinated analog. Epibromohydrin was only slightly more active than epichlorohydrin, but both were highly active. With both of the halogenated epoxides, 59 preparation caused a substantial decrease in mutagenic activity at every concentration tested. All six compounds showed dose-related responsiveness for the base-pair substitution detector strains used. However, they were relatively inactive against the frameshift detector strain of S. typhimurium, TA-98. Glycerol, propylene glycol, and n-propanol, which are also three-carbon compounds containing one or more hydroxy groups, were inactive when trested at high concentrations with strain TA-100.
Insights
Epoxide compounds like epichlorohydrin and epibromohydrin are potent mutagens, while DBCP requires metabolic activation. These three-carbon compounds primarily showed mutagenicity in base-pair substitution tests, not frameshift mutations.
Area of Science:
- Toxicology
- Mutagenesis
- Chemical Safety
Background:
- Three-carbon compounds with antifertility activity were investigated for mutagenic potential.
- The study focused on structurally related compounds and their brominated derivatives.
Purpose of the Study:
- To assess the mutagenic activity of specific three-carbon compounds using the Salmonella typhimurium assay.
- To determine the activation requirements and dose-response relationships for these compounds.
Main Methods:
- Utilized the Salmonella typhimurium mutagenicity test (Ames test) with strains TA-100 (base-pair substitution) and TA-98 (frameshift).
- Tested compounds both with and without S9 microsomal preparation for metabolic activation.
- Evaluated dose-related responses for mutagenic activity.
Main Results:
- Epichlorohydrin, epibromohydrin, and glycidol were direct, highly active mutagens without S9 activation.
- 1,2-dibromo-3-chloropropane (DBCP) required S9 activation to exhibit mutagenicity.
- Alpha-bromohydrin was significantly more mutagenic than alpha-chlorohydrin.
- Compounds showed activity against base-pair substitution strains but were inactive against frameshift strains.
- Glycerol, propylene glycol, and n-propanol were inactive.
Conclusions:
- Epoxide-containing three-carbon compounds are potent direct mutagens.
- Metabolic activation is crucial for the mutagenicity of certain halogenated propanes like DBCP.
- The mutagenic potential of these compounds is primarily associated with base-pair substitution mechanisms.
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