Publication: Dopamine Signaling Is Essential for Precise Rates of Locomotion by C. elegans
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Date
2012
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Public Library of Science
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Omura, Daniel T., Damon A. Clark, Aravinthan D.T. Samuel, and H. Robert Horvitz. 2012. Dopamine signaling is essential for precise rates of locomotion by C. elegans. PLoS ONE 7(6): e38649.
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Abstract
Dopamine is an important neuromodulator in both vertebrates and invertebrates. We have found that reduced dopamine signaling can cause a distinct abnormality in the behavior of the nematode C. elegans, which has only eight dopaminergic neurons. Using an automated particle-tracking system for the analysis of C. elegans locomotion, we observed that individual wild-type animals made small adjustments to their speed to maintain constant rates of locomotion. By contrast, individual mutant animals defective in the synthesis of dopamine made larger adjustments to their speeds, resulting in large fluctuations in their rates of locomotion. Mutants defective in dopamine signaling also frequently exhibited both abnormally high and abnormally low average speeds. The ability to make small adjustments to speed was restored to these mutants by treatment with dopamine. These behaviors depended on the D2-like dopamine receptor DOP-3 and the G-protein subunit GOA-1. We suggest that C. elegans and other animals, including humans, might share mechanisms by which dopamine restricts motor activity levels and coordinates movement.
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Keywords
biology, anatomy and physiology, neurological system, motor systems, neural pathways, biochemistry, neurochemistry, neurochemicals, dopamine, genetics, genetic mutation, mutagenesis, heredity, phenotypes, molecular genetics, gene identification and analysis, gene regulation, genetics of disease, model organisms, animal models, Caenorhabditis elegans, molecular cell biology, signal transduction, membrane receptor signaling, neurotransmitter receptor signaling, neuroscience, neuromodulation, behavioral neuroscience, molecular neuroscience, neurotransmitters, medicine, neurology
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