Targeted mutation of the calbindin D28K gene disrupts circadian rhythmicity and entrainment
- 28 June 2008
- journal article
- Published by Wiley in European Journal of Neuroscience
- Vol. 27 (11), 2907-2921
- https://doi.org/10.1111/j.1460-9568.2008.06239.x
Abstract
The suprachiasmatic nucleus (SCN) is the principal circadian pacemaker in mammals. A salient feature of the SCN is that cells of a particular phenotype are topographically organized; this organization defines functionally distinct subregions that interact to generate coherent rhythmicity. In Syrian hamsters (Mesocricetus auratus), a dense population of directly retinorecipient calbindin D28K (CalB) neurons in the caudal SCN marks a subregion critical for circadian rhythmicity. In mouse SCN, a dense cluster of CalB neurons occurs during early postnatal development, but in the adult CalB neurons are dispersed through the SCN. In the adult retina CalB colocalizes with melanopsin‐expressing ganglion cells. In the present study, we explored the role of CalB in modulating circadian function and photic entrainment by investigating mice with a targeted mutation of the CalB gene (CalB−/− mice). In constant darkness (DD), CalB−/− animals either become arrhythmic (40%) or exhibit low‐amplitude locomotor rhythms with marked activity during subjective day (60%). Rhythmic clock gene expression is blunted in these latter animals. Importantly, CalB−/− mice exhibit anomalies in entrainment revealed following transfer from a light : dark cycle to DD. Paradoxically, responses to acute light pulses measured by behavioral phase shifts, SCN FOS protein and Period1 mRNA expression are normal. Together, the developmental pattern of CalB expression in mouse SCN, the presence of CalB in photoresponsive ganglion cells and the abnormalities seen in CalB−/− mice suggest an important role for CalB in mouse circadian function.Keywords
This publication has 51 references indexed in Scilit:
- Melanopsin Triggers the Release of Internal Calcium Stores in Response to Light†Photochemistry and Photobiology, 2007
- Gates and Oscillators II: Zeitgebers and the Network Model of the Brain ClockJournal of Biological Rhythms, 2007
- Synaptic inputs to retinal ganglion cells that set the circadian clockEuropean Journal of Neuroscience, 2006
- Circadian dynamics of vasopressin in mouse selection lines: Translation and release in the SCNBrain Research, 2005
- Targeted Microlesions Reveal Novel Organization of the Hamster Suprachiasmatic NucleusJournal of Neuroscience, 2004
- Molecular machinery of the circadian clock in mammalsCell and tissue research, 2002
- Melanopsin-Containing Retinal Ganglion Cells: Architecture, Projections, and Intrinsic PhotosensitivityScience, 2002
- Melanopsin: a novel photopigment involved in the photoentrainment of the brain's biological clock?Annals of Medicine, 2002
- Comparison of visual sensitivity for suppression of pineal melatonin and circadian phase-shifting in the golden hamsterBrain Research, 1991
- Loss of a circadian adrenal corticosterone rhythm following suprachiasmatic lesions in the ratBrain Research, 1972