» Articles » PMID: 18366255

Circadian Remodeling of Neuronal Circuits Involved in Rhythmic Behavior

Overview
Journal PLoS Biol
Specialty Biology
Date 2008 Mar 28
PMID 18366255
Citations 118
Authors
Affiliations
Soon will be listed here.
Abstract

Clock output pathways are central to convey timing information from the circadian clock to a diversity of physiological systems, ranging from cell-autonomous processes to behavior. While the molecular mechanisms that generate and sustain rhythmicity at the cellular level are well understood, it is unclear how this information is further structured to control specific behavioral outputs. Rhythmic release of pigment dispersing factor (PDF) has been proposed to propagate the time of day information from core pacemaker cells to downstream targets underlying rhythmic locomotor activity. Indeed, such circadian changes in PDF intensity represent the only known mechanism through which the PDF circuit could communicate with its output. Here we describe a novel circadian phenomenon involving extensive remodeling in the axonal terminals of the PDF circuit, which display higher complexity during the day and significantly lower complexity at nighttime, both under daily cycles and constant conditions. In support to its circadian nature, cycling is lost in bona fide clockless mutants. We propose this clock-controlled structural plasticity as a candidate mechanism contributing to the transmission of the information downstream of pacemaker cells.

Citing Articles

Synaptic Targets of Circadian Clock Neurons Influence Core Clock Parameters.

Scholz-Carlson E, Iyer A, Nern A, Ewer J, Fernandez M, Fernandez M bioRxiv. 2025; .

PMID: 39975067 PMC: 11838453. DOI: 10.1101/2025.01.30.635801.


Mutual coupling of neurons in the circadian master clock: What we can learn from fruit flies.

Helfrich-Forster C, Reinhard N Neurobiol Sleep Circadian Rhythms. 2025; 18:100112.

PMID: 39906412 PMC: 11791320. DOI: 10.1016/j.nbscr.2025.100112.


Photoperiodic plasticity of pigment-dispersing factor immunoreactive fibers projecting toward prothoracicotropic hormone neurons in flesh fly Sarcophaga similis larvae.

Ohe Y, Hasebe M, Hamanaka Y, Goto S, Shiga S J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2025; .

PMID: 39812695 DOI: 10.1007/s00359-024-01729-y.


A neurotrophin functioning with a Toll regulates structural plasticity in a dopaminergic circuit.

Sun J, Rojo-Cortes F, Ulian-Benitez S, Forero M, Li G, Singh D Elife. 2024; 13.

PMID: 39704728 PMC: 11661795. DOI: 10.7554/eLife.102222.


Neuronal Progenitors Suffer Genotoxic Stress in the Clock Mutant .

Colonna Romano N, Marchetti M, Marangoni A, Leo L, Retrosi D, Rosato E Cells. 2024; 13(23).

PMID: 39682693 PMC: 11640223. DOI: 10.3390/cells13231944.


References
1.
Miskiewicz K, Pyza E, Schurmann F . Ultrastructural characteristics of circadian pacemaker neurones, immunoreactive to an antibody against a pigment-dispersing hormone in the fly's brain. Neurosci Lett. 2004; 363(1):73-7. DOI: 10.1016/j.neulet.2004.03.051. View

2.
Ceriani M, Hogenesch J, Yanovsky M, Panda S, Straume M, Kay S . Genome-wide expression analysis in Drosophila reveals genes controlling circadian behavior. J Neurosci. 2002; 22(21):9305-19. PMC: 6758054. View

3.
Pyza E, Meinertzhagen I . Neurites of period-expressing PDH cells in the fly's optic lobe exhibit circadian oscillations in morphology. Eur J Neurosci. 1997; 9(8):1784-8. DOI: 10.1111/j.1460-9568.1997.tb01537.x. View

4.
Stanewsky R . Genetic analysis of the circadian system in Drosophila melanogaster and mammals. J Neurobiol. 2002; 54(1):111-47. DOI: 10.1002/neu.10164. View

5.
Lear B, Merrill C, Lin J, Schroeder A, Zhang L, Allada R . A G protein-coupled receptor, groom-of-PDF, is required for PDF neuron action in circadian behavior. Neuron. 2005; 48(2):221-7. DOI: 10.1016/j.neuron.2005.09.008. View