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Locomotion deficiencies are a major symptom of Parkinson’s disease and are largely caused by deterioration of dopaminergic neurons of the substantia nigra1. Rotenone is a ketonic insecticide that has been studied extensively to model Parkinson’s motor deficits in Drosophila2-6. Rotenone causes oxidative damage by blocking the oxidative phosphorylation pathway, which ultimately causes cell death7. Dopaminergic neurons are more prone to rotenone toxicity, making the effects of the chemical primarily motor based2,7. By inducing Parkinson’s disease symptoms in flies, we can better understand the disease and remedy its symptoms6,8-11. Drosophila provides a good model for studying this effect because they are genetically tractable, easy to maintain, and have a rapid life cycle.
Several studies have shown that rotenone causes short-term startle-induced locomotion defects in Drosophila—when flies are maintained on rotenone-supplemented food, they show a slower negative geotactic response after startle2-6. Their failure to climb upwards in a vial apparatus as quickly as control trials is indicative of startle-induced locomotion defects.
The effect of rotenone on long-term, spontaneous movement is not well described. Drosophila activity monitors (DAMs) have been successfully used to monitor movement in Drosophila circadian rhythm studies12,13. Flies are placed in individual tubes, which are loaded into the DAM. This apparatus is equipped with an infrared sensor, which counts the number of times a fly breaks the infrared beam. These counts can be used as a measure of undisturbed locomotion and activity12,13. By placing flies in a DAM, the effect of rotenone on their long-term locomotion can be characterized. This study describes methods to measure short-term startle-induced locomotion and long-term spontaneous locomotion in order to better understand the effects of rotenone mediated motor deficiencies. Characterization of locomotion deficiencies mimicking Parkinson’s disease are important because they allow for the study of other compounds which may reverse these locomotion defects.