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1.
Cell Tissue Res ; 343(3): 559-77, 2011 Mar.
Article in English | MEDLINE | ID: mdl-21229364

ABSTRACT

Lesion and transplantation studies in the cockroach, Leucophaea maderae, have located its bilaterally symmetric circadian pacemakers necessary for driving circadian locomotor activity rhythms to the accessory medulla of the optic lobes. The accessory medulla comprises a network of peptidergic neurons, including pigment-dispersing factor (PDF)-expressing presumptive circadian pacemaker cells. At least three of the PDF-expressing neurons directly connect the two accessory medullae, apparently as a circadian coupling pathway. Here, the PDF-expressing circadian coupling pathways were examined for peptide colocalization by tracer experiments and double-label immunohistochemistry with antisera against PDF, FMRFamide, and Asn(13)-orcokinin. A fourth group of contralaterally projecting medulla neurons was identified, additional to the three known groups. Group one of the contralaterally projecting medulla neurons contained up to four PDF-expressing cells. Of these, three medium-sized PDF-immunoreactive neurons coexpressed FMRFamide and Asn(13)-orcokinin immunoreactivity. However, the contralaterally projecting largest PDF neuron showed no further peptide colocalization, as was also the case for the other large PDF-expressing medulla cells, allowing the easy identification of this cell group. Although two-thirds of all PDF-expressing medulla neurons coexpressed FMRFamide and orcokinin immunoreactivity in their somata, colocalization of PDF and FMRFamide immunoreactivity was observed in only a few termination sites. Colocalization of PDF and orcokinin immunoreactivity was never observed in any of the terminals or optic commissures. We suggest that circadian pacemaker cells employ axonal peptide sorting to phase-control physiological processes at specific times of the day.


Subject(s)
Biological Clocks/physiology , Circadian Rhythm/physiology , Cockroaches/anatomy & histology , Cockroaches/physiology , Neurons/metabolism , Neuropeptides/metabolism , Animals , FMRFamide/metabolism , Immunohistochemistry , Male , Nerve Net/anatomy & histology , Nerve Net/physiology , Neurons/cytology , Optic Lobe, Nonmammalian/cytology , Optic Lobe, Nonmammalian/physiology
2.
Cell Tissue Res ; 332(2): 257-69, 2008 May.
Article in English | MEDLINE | ID: mdl-18338182

ABSTRACT

The accessory medulla, the circadian clock of the cockroach Leucophaea maderae, is abundant in neuropeptides. Among these neuropeptides are the FMRFamide-related peptides (FaRPs), which generally share the C-terminal RFamide. As a first step toward understanding the functional role of FaRPs in the circadian clock of the cockroach, immunocytochemistry with antisera against various FaRPs, MALDI-TOF mass spectrometry, and injections of two FaRPs combined with running-wheel assays were performed. Prominent FMRFamide-like immunoreactivity was found in maximally four soma clusters associated with the accessory medulla and in most neuropils of the protocerebrum. By MALDI-TOF mass spectrometry, various extended FMRFamides of the cockroach L. maderae were partially identified in thoracic perisympathetic organs, structures known to accumulate extended FMRFamides in insects. By mass match, several of these peptides were also detected in the accessory medulla. Injections of FMRFamide and Pea-FMRFa-7 (DRSDNFIRF-NH(2)) into the vicinity of the accessory medulla caused time-dependent phase-shifts of locomotor activity rhythms at circadian times 8, 18, and 4. Thus, our data suggest a role for the different FaRPs in the control of circadian locomotor activity rhythms in L. maderae.


Subject(s)
Circadian Rhythm , Cockroaches/physiology , FMRFamide/pharmacology , Neuropeptides/physiology , Animals , Circadian Rhythm/drug effects , FMRFamide/isolation & purification , Immunohistochemistry , Male , Motor Activity/drug effects , Nervous System/chemistry , Nervous System/cytology , Neuropeptides/analysis , Neuropeptides/pharmacology , Optic Lobe, Nonmammalian/chemistry , Spectrometry, Mass, Matrix-Assisted Laser Desorption-Ionization
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