Pigment dispersing factor-dependent and -independent circadian locomotor behavioral rhythms

Sheeba, Vasu ; Sharma, Vijay K. ; Gu, Huaiyu ; Chou, Yu-Ting ; O'Dowd, Diane K. ; Holmes, Todd C. (2008) Pigment dispersing factor-dependent and -independent circadian locomotor behavioral rhythms Journal of Neuroscience, 28 (1). pp. 217-227. ISSN 0270-6474

Full text not available from this repository.

Official URL: http://neuro.cjb.net/content/28/1/217.short

Related URL: http://dx.doi.org/10.1523/JNEUROSCI.4087-07.2008

Abstract

Circadian pacemaker circuits consist of ensembles of neurons, each expressing molecular oscillations, but how circuit-wide coordination of multiple oscillators regulates rhythmic physiological and behavioral outputs remains an open question. To investigate the relationship between the pattern of oscillator phase throughout the circadian pacemaker circuit and locomotor activity rhythms in Drosophila, we perturbed the electrical activity and pigment dispersing factor (PDF) levels of the lateral ventral neurons (LNv) and assayed their combinatorial effect on molecular oscillations in different parts of the circuit and on locomotor activity behavior. Altered electrical activity of PDF-expressing LNv causes initial behavioral arrhythmicity followed by gradual long-term emergence of two concurrent short- and long-period circadian behavioral activity bouts in ~60% of flies. Initial desynchrony of circuit-wide molecular oscillations is followed by the emergence of a novel pattern of period (PER) synchrony whereby two subgroups of dorsal neurons (DN1 and DN2) exhibit PER oscillation peaks coinciding with two activity bouts, whereas other neuronal subgroups exhibit a single PER peak coinciding with one of the two activity bouts. The emergence of this novel pattern of circuit-wide oscillator synchrony is not accompanied by concurrent change in the electrical activity of the LNv. In PDF-null flies, altered electrical activity of LNv drives a short-period circadian activity bout only, indicating that PDF-independent factors underlie the short-period circadian activity component and that the long-period circadian component is PDF-dependent. Thus, polyrhythmic behavioral patterns in electrically manipulated flies are regulated by circuit-wide coordination of molecular oscillations and electrical activity of LNv via PDF-dependent and -independent factors.

Item Type:Article
Source:Copyright of this article belongs to Society for Neuroscience.
Keywords:Circadian; Neural-network; Drosophila; Synchronization; Peptide Modulation; Voltage Clamp
ID Code:80364
Deposited On:31 Jan 2012 14:23
Last Modified:31 Jan 2012 14:23

Repository Staff Only: item control page