Reevaluation ofDrosophila melanogaster's neuronal circadian pacemakers reveals new neuronal classes
- 19 July 2006
- journal article
- research article
- Published by Wiley in Journal of Comparative Neurology
- Vol. 498 (2) , 180-193
- https://doi.org/10.1002/cne.21021
Abstract
In the brain of the fly Drosophila melanogaster, ∼150 clock‐neurons are organized to synchronize and maintain behavioral rhythms, but the physiological and neurochemical bases of their interactions are largely unknown. Here we reevaluate the cellular properties of these pacemakers by application of a novel genetic reporter and several phenotypic markers. First, we describe an enhancer trap marker called R32 that specifically reveals several previously undescribed aspects of the fly's central neuronal pacemakers. We find evidence for a previously unappreciated class of neuronal pacemakers, the lateral posterior neurons (LPNs), and establish anatomical, molecular, and developmental criteria to establish a subclass within the dorsal neuron 1 (DN1) group of pacemakers. Furthermore, we show that the neuropeptide IPNamide is specifically expressed by this DN1 subclass. These observations implicate IPNamide as a second candidate circadian transmitter in the Drosophila brain. Finally, we present molecular and anatomical evidence for unrecognized phenotypic diversity within each of four established classes of clock neurons. J. Comp. Neurol. 498:180–193, 2006.Keywords
This publication has 40 references indexed in Scilit:
- Temperature cycles drive Drosophila circadian oscillation in constant light that otherwise induces behavioural arrhythmicityEuropean Journal of Neuroscience, 2005
- At the pulse of time: protein interactions determine the pace of circadian clocksFEBS Letters, 2005
- Tick-Talk, the Cellular and Molecular Biology of Drosophila Circadian RhythmsPublished by Elsevier ,2005
- Transcription Regulation within the Circadian Clock: The E-box and BeyondJournal of Biological Rhythms, 2004
- Coupled oscillators control morning and evening locomotor behaviour of DrosophilaNature, 2004
- Morning and evening peaks of activity rely on different clock neurons of the Drosophila brainNature, 2004
- Novel Features of Cryptochrome-Mediated Photoreception in the Brain Circadian Clock ofDrosophilaJournal of Neuroscience, 2004
- The neuroarchitecture of the circadian clock in the brain of Drosophila melanogasterMicroscopy Research and Technique, 2003
- Drosophila Clock Can Generate Ectopic Circadian ClocksCell, 2003
- A promoterless period gene mediates behavioral rhythmicity and cyclical per expression in a restricted subset of the drosophila nervous systemNeuron, 1994