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Rod photoreceptors drive circadian photoentrainment across a wide range of light intensities.


ABSTRACT: In mammals, synchronization of the circadian pacemaker in the hypothalamus is achieved through direct input from the eyes conveyed by intrinsically photosensitive retinal ganglion cells (ipRGCs). Circadian photoentrainment can be maintained by rod and cone photoreceptors, but their functional contributions and their retinal circuits that impinge on ipRGCs are not well understood. Using mice that lack functional rods or in which rods are the only functional photoreceptors, we found that rods were solely responsible for photoentrainment at scotopic light intensities. Rods were also capable of driving circadian photoentrainment at photopic intensities at which they were incapable of supporting a visually guided behavior. Using mice in which cone photoreceptors were ablated, we found that rods signal through cones at high light intensities, but not at low light intensities. Thus, rods use two distinct retinal circuits to drive ipRGC function to support circadian photoentrainment across a wide range of light intensities.

SUBMITTER: Altimus CM 

PROVIDER: S-EPMC2928860 | biostudies-literature | 2010 Sep

REPOSITORIES: biostudies-literature

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Rod photoreceptors drive circadian photoentrainment across a wide range of light intensities.

Altimus Cara M CM   Güler Ali D AD   Alam Nazia M NM   Arman A Cyrus AC   Prusky Glen T GT   Sampath Alapakkam P AP   Hattar Samer S  

Nature neuroscience 20100815 9


In mammals, synchronization of the circadian pacemaker in the hypothalamus is achieved through direct input from the eyes conveyed by intrinsically photosensitive retinal ganglion cells (ipRGCs). Circadian photoentrainment can be maintained by rod and cone photoreceptors, but their functional contributions and their retinal circuits that impinge on ipRGCs are not well understood. Using mice that lack functional rods or in which rods are the only functional photoreceptors, we found that rods were  ...[more]

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