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Central Projections of Melanopsin-expressing Retinal Ganglion Cells in the Mouse

Overview
Journal J Comp Neurol
Specialty Neurology
Date 2006 Jun 1
PMID 16736474
Citations 464
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Abstract

A rare type of ganglion cell in mammalian retina is directly photosensitive. These novel retinal photoreceptors express the photopigment melanopsin. They send axons directly to the suprachiasmatic nucleus (SCN), intergeniculate leaflet (IGL), and olivary pretectal nucleus (OPN), thereby contributing to photic synchronization of circadian rhythms and the pupillary light reflex. Here, we sought to characterize more fully the projections of these cells to the brain. By targeting tau-lacZ to the melanopsin gene locus in mice, ganglion cells that would normally express melanopsin were induced to express, instead, the marker enzyme beta-galactosidase. Their axons were visualized by X-gal histochemistry or anti-beta-galactosidase immunofluorescence. Established targets were confirmed, including the SCN, IGL, OPN, ventral division of the lateral geniculate nucleus (LGv), and preoptic area, but the overall projections were more widespread than previously recognized. Targets included the lateral nucleus, peri-supraoptic nucleus, and subparaventricular zone of the hypothalamus, medial amygdala, margin of the lateral habenula, posterior limitans nucleus, superior colliculus, and periaqueductal gray. There were also weak projections to the margins of the dorsal lateral geniculate nucleus. Co-staining with the cholera toxin B subunit to label all retinal afferents showed that melanopsin ganglion cells provide most of the retinal input to the SCN, IGL, and lateral habenula and much of that to the OPN, but that other ganglion cells do contribute at least some retinal input to these targets. Staining patterns after monocular enucleation revealed that the projections of these cells are overwhelmingly crossed except for the projection to the SCN, which is bilaterally symmetrical.

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References
1.
Fite K, Janusonis S, Foote W, Bengston L . Retinal afferents to the dorsal raphe nucleus in rats and Mongolian gerbils. J Comp Neurol. 1999; 414(4):469-84. DOI: 10.1002/(sici)1096-9861(19991129)414:4<469::aid-cne4>3.0.co;2-p. View

2.
Morin L, Blanchard J . Forebrain connections of the hamster intergeniculate leaflet: comparison with those of ventral lateral geniculate nucleus and retina. Vis Neurosci. 1999; 16(6):1037-54. DOI: 10.1017/s0952523899166069. View

3.
Provencio I, Rodriguez I, Jiang G, Hayes W, Moreira E, Rollag M . A novel human opsin in the inner retina. J Neurosci. 2000; 20(2):600-5. PMC: 6772411. View

4.
Aggelopoulos N, Meissl H . Responses of neurones of the rat suprachiasmatic nucleus to retinal illumination under photopic and scotopic conditions. J Physiol. 2000; 523 Pt 1:211-22. PMC: 2269794. DOI: 10.1111/j.1469-7793.2000.t01-1-00211.x. View

5.
Lucas R, Douglas R, Foster R . Characterization of an ocular photopigment capable of driving pupillary constriction in mice. Nat Neurosci. 2001; 4(6):621-6. DOI: 10.1038/88443. View