Summary
Light exposure can directly trigger rapid sleep onset in nocturnal rodents through a multi-phase process involving locomotor suppression, sustained sleep, and body temperature reduction, mediated by both classical photoreceptors and intrinsically photosensitive retinal ganglion cells. These findings suggest retinal light pathways could be leveraged to design lighting interventions that promote sleep onset in humans, though translational work remains needed.
Key Findings
- Brief photic stimuli in nocturnal rodents trigger rapid locomotor suppression followed by a fixed-duration sleep interval (Phase 2) and subsequent recovery phase (Phase 3)
- Light-induced sleep is accompanied by a large drop in core body temperature (Tc) during Phase 1
- Additional light exposure can extend the duration of Phase 2 sleep, suggesting a dose-response relationship between light and sleep duration
- Photosomnolence is mediated by both classical retinal photoreceptors and intrinsically photosensitive retinal ganglion cells (ipRGCs)
- Sleep induction occurs despite ongoing high locomotor activity at stimulus onset, indicating a direct photically-driven override of arousal circuits
Categories
Sleep & Circadian Health: Examines how light exposure directly induces sleep (photosomnolence) via retinal photoreceptors including classical and ganglion cell types, with implications for light-mediated sleep modulation.
The Science of Light: Describes retinal pathways (including melanopsin-containing ipRGCs) through which light activates sleep systems, and discusses roles of orexin and melanin-concentrating hormone in light-mediated arousal regulation.
Author(s)
LP Morin
Publication Year
2015
Number of Citations
14
Related Publications
Sleep & Circadian Health
- Phototransduction by retinal ganglion cells that set the circadian clock
- The mammalian circadian timing system: organization and coordination of central and peripheral clocks
- The twoāprocess model of sleep regulation: a reappraisal
- Melanopsin is required for non-image-forming photic responses in blind mice
- Strange vision: ganglion cells as circadian photoreceptors
The Science of Light
- Phototransduction by retinal ganglion cells that set the circadian clock
- Color appearance models
- The mammalian circadian timing system: organization and coordination of central and peripheral clocks
- Diminished pupillary light reflex at high irradiances in melanopsin-knockout mice
- Melanopsin is required for non-image-forming photic responses in blind mice