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Does the clock make the poison? Circadian variation in response to pesticides
Louisa A Hooven1, Katherine A Sherman, Shawn Butcher
1Department of Zoology, Oregon State University, Corvallis, Oregon, United States of America. hoovenl@onid.orst.edu
Background:
Circadian clocks govern daily physiological and molecular rhythms, and putative rhythms in expression of xenobiotic metabolizing (XM) genes have been described in both insects and mammals. Such rhythms could have important consequences for outcomes of chemical exposures at different times of day. To determine whether reported XM gene expression rhythms result in functional rhythms, we examined daily profiles of enzyme activity and dose responses to the pesticides propoxur, deltamethrin, fipronil, and malathion.
Methodology/Principal Findings:
Published microarray expression data were examined for temporal patterns. Male Drosophila were collected for ethoxycoumarin-O-deethylase (ECOD), esterase, glutathione-S-transferase (GST), and, and uridine 5'-diphosphoglucosyltransferase (UGT) enzyme activity assays, or subjected to dose-response tests at four hour intervals throughout the day in both light/dark and constant light conditions. Peak expression of several XM genes cluster in late afternoon. Significant diurnal variation was observed in ECOD and UGT enzyme activity, however, no significant daily variation was observed in esterase or GST activity. Daily profiles of susceptibility to lethality after acute exposure to propoxur and fipronil showed significantly increased resistance in midday, while susceptibility to deltamethrin and malathion varied little. In constant light, which interferes with clock function, the daily variation in susceptibility to propoxur and in ECOD and UGT enzyme activity was depressed.
Conclusions/Significance:
Expression and activities of specific XM enzymes fluctuate during the day, and for specific insecticides, the concentration resulting in 50% mortality varies significantly during the day. Time of day of chemical exposure should be an important consideration in experimental design, use of pesticides, and human risk assessment.
Insights
Daily rhythms in xenobiotic metabolizing (XM) enzyme activity and pesticide susceptibility exist in fruit flies. These findings highlight the importance of considering the time of day for chemical exposure assessments and risk evaluations.
Area of Science:
- Chronobiology
- Environmental Toxicology
- Insect Physiology
Background:
- Circadian clocks regulate daily rhythms in physiological and molecular processes.
- Xenobiotic metabolizing (XM) gene expression rhythms may influence chemical exposure outcomes.
- Investigating functional consequences of XM gene rhythms is crucial.
Purpose of the Study:
- To determine if XM gene expression rhythms translate into functional rhythms.
- To examine daily profiles of enzyme activity and pesticide dose responses.
- To assess the impact of circadian disruption on these rhythms.
Main Methods:
- Analyzed published microarray data for temporal patterns in XM gene expression.
- Assayed enzyme activities (ethoxycoumarin-O-deethylase, esterase, glutathione-S-transferase, uridine 5'-diphosphoglucosyltransferase) at regular intervals.
- Conducted pesticide (propoxur, deltamethrin, fipronil, malathion) dose-response tests over a 24-hour period under different light conditions.
Main Results:
- Peak expression of several XM genes occurred in the late afternoon.
- Significant diurnal variations were observed in ethoxycoumarin-O-deethylase and uridine 5'-diphosphoglucosyltransferase enzyme activities.
- Midday exposure showed increased resistance to propoxur and fipronil; deltamethrin and malathion susceptibility varied less. Circadian disruption (constant light) reduced daily variations in susceptibility and enzyme activity.
Conclusions:
- Specific XM enzyme activities fluctuate daily, impacting insecticide efficacy.
- Pesticide concentration for 50% mortality varies significantly with time of day.
- Time of day is a critical factor for experimental design, pesticide use, and human risk assessment.
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