| Literature DB >> 15498492 |
Fabien Perrin1, Philippe Peigneux, Sonia Fuchs, Stéphane Verhaeghe, Steven Laureys, Benita Middleton, Christian Degueldre, Guy Del Fiore, Gilles Vandewalle, Evelyne Balteau, Robert Poirrier, Vincent Moreau, André Luxen, Pierre Maquet, Derk-Jan Dijk.
Abstract
The brain processes light information to visually represent the environment but also to detect changes in ambient light level. The latter information induces non-image-forming responses and exerts powerful effects on physiology such as synchronization of the circadian clock and suppression of melatonin. In rodents, irradiance information is transduced from a discrete subset of photosensitive retinal ganglion cells via the retinohypothalamic tract to various hypothalamic and brainstem regulatory structures including the hypothalamic suprachiasmatic nuclei, the master circadian pacemaker. In humans, light also acutely modulates alertness, but the cerebral correlates of this effect are unknown. We assessed regional cerebral blood flow in 13 subjects attending to auditory and visual stimuli in near darkness following light exposures (>8000 lux) of different durations (0.5, 17, 16.5, and 0 min) during the biological night. The bright broadband polychromatic light suppressed melatonin and enhanced alertness. Functional imaging revealed that a large-scale occipito-parietal attention network, including the right intraparietal sulcus, was more active in proportion to the duration of light exposures preceding the scans. Activity in the hypothalamus decreased in proportion to previous illumination. These findings have important implications for understanding the effects of light on human behavior.Entities:
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Year: 2004 PMID: 15498492 DOI: 10.1016/j.cub.2004.09.082
Source DB: PubMed Journal: Curr Biol ISSN: 0960-9822 Impact factor: 10.834