The acute light-induction of sleep is mediated by OPN4-based photoreception
- 17 August 2008
- journal article
- research article
- Published by Springer Nature in Nature Neuroscience
- Vol. 11 (9) , 1068-1073
- https://doi.org/10.1038/nn.2179
Abstract
Sleep is regulated by both homeostatic and circadian mechanisms. The latter, termed 'process c', helps synchronize sleep-wake patterns to the appropriate time of the day. However, in the absence of a circadian clock, overall sleep-wake rhythmicity is preserved and remains synchronized to the external light-dark cycle, indicating that there is an additional, clock-independent photic input to sleep. We found that the direct photic regulation of sleep in mice is predominantly mediated by melanopsin (OPN4)-based photoreception of photosensitive retinal ganglion cells (pRGCs). Moreover, OPN4-dependent sleep regulation was correlated with the activation of sleep-promoting neurons in the ventrolateral preoptic area and the superior colliculus. Collectively, our findings describe a previously unknown pathway in sleep regulation and identify the pRGC/OPN4 signaling system as a potentially new pharmacological target for the selective manipulation of sleep and arousal states.Keywords
This publication has 45 references indexed in Scilit:
- Calcium Imaging Reveals a Network of Intrinsically Light-Sensitive Inner-Retinal NeuronsCurrent Biology, 2003
- Melanopsin and rod–cone photoreceptive systems account for all major accessory visual functions in miceNature, 2003
- Diminished Pupillary Light Reflex at High Irradiances in Melanopsin-Knockout MiceScience, 2003
- Melanopsin ( Opn4 ) Requirement for Normal Light-Induced Circadian Phase ShiftingScience, 2002
- Role of Melanopsin in Circadian Responses to LightScience, 2002
- Phototransduction by Retinal Ganglion Cells That Set the Circadian ClockScience, 2002
- Photoreceptive net in the mammalian retinaNature, 2002
- Characterization of an ocular photopigment capable of driving pupillary constriction in miceNature Neuroscience, 2001
- Regulation of Mammalian Circadian Behavior by Non-rod, Non-cone, Ocular PhotoreceptorsScience, 1999
- Regulation of the Mammalian Pineal by Non-rod, Non-cone, Ocular PhotoreceptorsScience, 1999