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Micronuclei in mice treated with monocrotaline with and without phenobarbital pretreatment
M J Higgins1, G Ficsor, C S Aaron
1Upjohn Company, Kalamazoo, MI 49001, USA.
Abstract:
Monocrotaline is a very potent toxin, producing significant effects of pneumotoxicity, hepatotoxicity, and teratogenicity, as well as carcinogenicity. In addition, the compound has been clearly shown to be mutagenic after metabolic activation. The goal of the experiments reported here was to confirm the reported clastogenesis induced by this agent in vivo and to evaluate the impact of modulation of metabolic activity by phenobarbital, a potent P-450 inducer (both Phase I and Phase II enzymes). The method used in addressing this problem relied on a new technique for monitoring clastogenesis in vivo, i.e., the acridine orange micronucleus assay method originally exploited by Hayashi et al. [1990]. The result of our experiments confirmed monocrotaline to be an effective clastogen in vivo, using the acridine orange method of assessment. The peak in induction of micronuclei occurred on the second day following intraperitoneal administration of the drug. Administration of phenobarbital prior to monocrotaline did appear to modulate the micronucleus induction. At 30 mg/kg bw monocrotaline, the pretreatment with phenobarbital appears to increase the intensity of monocrotaline clastogenesis, while the effect at higher doses (60 and 125 mg/kg bw) is a reduction in potency, presumably reflecting increased importance of Phase II metabolism for monocrotaline at these doses. Thus the study reported here confirms the potent in vivo clastogenesis of monocrotaline, and provides evidence for a dose-related shift in mechanism for the phenomenon.
Insights
Monocrotaline causes genetic damage (clastogenesis) in vivo. Phenobarbital pretreatment altered this effect, suggesting dose-dependent metabolic pathways influence monocrotaline
Area of Science:
- Toxicology
- Genetics
- Pharmacology
Background:
- Monocrotaline is a potent toxin with known pneumotoxicity, hepatotoxicity, teratogenicity, and carcinogenicity.
- Metabolic activation of monocrotaline has been shown to be mutagenic.
- Clastogenesis, or the induction of chromosome breakage, is a key concern for monocrotaline exposure.
Purpose of the Study:
- To confirm monocrotaline's clastogenic effects in vivo.
- To investigate how phenobarbital, a P-450 inducer, modulates monocrotaline-induced clastogenesis.
- To explore the dose-dependent mechanisms underlying monocrotaline's genotoxicity.
Main Methods:
- Utilized the acridine orange micronucleus assay for in vivo clastogenesis assessment.
- Administered monocrotaline intraperitoneally to experimental subjects.
- Pretreated subjects with phenobarbital to evaluate metabolic modulation.
Main Results:
- Confirmed monocrotaline as an effective in vivo clastogen.
- Observed peak micronucleus induction two days post-monocrotaline administration.
- Phenobarbital pretreatment showed a dose-dependent effect: increased clastogenesis at 30 mg/kg, but reduced potency at higher doses (60 and 125 mg/kg).
Conclusions:
- Monocrotaline is a potent in vivo clastogen.
- Phenobarbital administration reveals a dose-related shift in the mechanism of monocrotaline's clastogenic effect.
- Phase II metabolism appears increasingly important for mitigating monocrotaline toxicity at higher doses.