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PMID: 10632589 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S.

A novel human opsin in the inner retina.

Provencio I, Rodriguez IR, Jiang G, Hayes WP, Moreira EF, Rollag MD

Abstract

Here we report the identification of a novel human opsin, melanopsin, that is expressed in cells of the mammalian inner retina. The human melanopsin gene consists of 10 exons and is mapped to chromosome 10q22. This chromosomal localization and gene structure differs significantly from that of other human opsins that typically have four to seven exons. A survey of 26 anatomical sites indicates that, in humans, melanopsin is expressed only in the eye. In situ hybridization histochemistry shows that melanopsin expression is restricted to cells within the ganglion and amacrine cell layers of the primate and murine retinas. Notably, expression is not observed in retinal photoreceptor cells, the opsin-containing cells of the outer retina that initiate vision. The unique inner retinal localization of melanopsin suggests that it is not involved in image formation but rather may mediate nonvisual photoreceptive tasks, such as the regulation of circadian rhythms and the acute suppression of pineal melatonin. The anatomical distribution of melanopsin-positive retinal cells is similar to the pattern of cells known to project from the retina to the suprachiasmatic nuclei of the hypothalamus, a primary circadian pacemaker.

MeSH Terms
Amino Acid Sequence Animals Chromosome Mapping Chromosomes, Human, Pair 10 Cloning, Molecular Exons Humans In Situ Hybridization Macaca mulatta Mice Molecular Sequence Data Organ Specificity Primates Retina/cytology,metabolism Retinal Ganglion Cells/cytology,metabolism Rod Opsins/genetics Sequence Alignment Sequence Homology, Amino Acid
Chemicals
Rod Opsins melanopsin
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Provencio I
Department of Anatomy and Cell Biology, Uniformed Services University of the Health Sciences, Bethesda, Maryland 20814, USA.
Rodriguez I R
Jiang G
Hayes W P
Moreira E F
Rollag M D
References (45)
45 references, click to expand
  1. Visual and circadian responses to light in aged retinally degenerate mice.
    Vision Res. 1994 Jul;34(14):1799-806 PMID: 7941382
  2. Circadian rhythms in mice can be regulated by photoreceptors with cone-like characteristics.
    Brain Res. 1995 Oct 2;694(1-2):183-90 PMID: 8974643
  3. Mammalian Cry1 and Cry2 are essential for maintenance of circadian rhythms.
    Nature. 1999 Apr 15;398(6728):627-30 PMID: 10217146
  4. Spectral sensitivity of photoreceptors mediating phase-shifts of circadian rhythms in retinally degenerate CBA/J (rd/rd) and normal CBA/N (+/+)mice.
    J Comp Physiol A. 1996 Jun;178(6):797-802 PMID: 8667293
  5. The endogenous chromophore of retinal G protein-coupled receptor opsin from the pigment epithelium.
    J Biol Chem. 1999 Mar 5;274(10):6085-90 PMID: 10037690
  6. A novel Go-mediated phototransduction cascade in scallop visual cells.
    J Biol Chem. 1997 Sep 12;272(37):22979-82 PMID: 9287291
  7. mCRY1 and mCRY2 are essential components of the negative limb of the circadian clock feedback loop.
    Cell. 1999 Jul 23;98(2):193-205 PMID: 10428031
  8. Cytoplasmic retinal localization of an evolutionary homolog of the visual pigments.
    Exp Eye Res. 1994 May;58(5):605-13 PMID: 7925698
  9. Thyroid hormone-dependent regulation of the intestinal fatty acid-binding protein gene during amphibian metamorphosis.
    Dev Biol. 1994 Jan;161(1):48-58 PMID: 8293885
  10. Regulation of mammalian circadian behavior by non-rod, non-cone, ocular photoreceptors.
    Science. 1999 Apr 16;284(5413):502-4 PMID: 10205061
  11. Molecular genetics of human color vision: the genes encoding blue, green, and red pigments.
    Science. 1986 Apr 11;232(4747):193-202 PMID: 2937147
  12. Isolation and nucleotide sequence of the gene encoding human rhodopsin.
    Proc Natl Acad Sci U S A. 1984 Aug;81(15):4851-5 PMID: 6589631
  13. A circadian oscillator in cultured cells of chicken pineal gland.
    Nature. 1979 Nov 1;282(5734):94-6 PMID: 503196
  14. A deep brain photoreceptive molecule in the toad hypothalamus.
    FEBS Lett. 1998 Mar 6;424(1-2):69-72 PMID: 9537517
  15. Role of mouse cryptochrome blue-light photoreceptor in circadian photoresponses.
    Science. 1998 Nov 20;282(5393):1490-4 PMID: 9822380
  16. Retinal projections in mice with inherited retinal degeneration: implications for circadian photoentrainment.
    J Comp Neurol. 1998 Jun 15;395(4):417-39 PMID: 9619497
  17. The comparative physiology of extraocular photoreception.
    Experientia. 1982 Sep 15;38(9):989-91 PMID: 7128763
  18. Pinopsin is a chicken pineal photoreceptive molecule.
    Nature. 1994 Nov 3;372(6501):94-7 PMID: 7969427
  19. Suppression of melatonin secretion in some blind patients by exposure to bright light.
    N Engl J Med. 1995 Jan 5;332(1):6-11 PMID: 7990870
  20. PHOTOSENSITIVITY OF THE FROG IRIS.
    J Gen Physiol. 1963 Jul;46:1249-65 PMID: 14043001
  21. The afferent connections of the suprachiasmatic nucleus of the golden hamster with emphasis on the retinohypothalamic projection.
    J Comp Neurol. 1982 Oct 10;211(1):65-83 PMID: 7174884
  22. Novel retinal photoreceptors.
    Nature. 1998 Jul 2;394(6688):27-8 PMID: 9665123
  23. Morphological and physiological aspects of melanophores in primary culture from tadpoles of Xenopus laevis.
    Cell Tissue Res. 1979 May 25;198(3):397-409 PMID: 223762
  24. Regulation of the mammalian pineal by non-rod, non-cone, ocular photoreceptors.
    Science. 1999 Apr 16;284(5413):505-7 PMID: 10205062
  25. Vitamin B2-based blue-light photoreceptors in the retinohypothalamic tract as the photoactive pigments for setting the circadian clock in mammals.
    Proc Natl Acad Sci U S A. 1998 May 26;95(11):6097-102 PMID: 9600923
  26. Peropsin, a novel visual pigment-like protein located in the apical microvilli of the retinal pigment epithelium.
    Proc Natl Acad Sci U S A. 1997 Sep 2;94(18):9893-8 PMID: 9275222
  27. Origins of uncrossed retinofugal projections in normal and hypopigmented mice.
    Vis Neurosci. 1990 Jun;4(6):595-604 PMID: 2177636
  28. Morphological characteristics of retinal ganglion cells projecting to the suprachiasmatic nucleus: a horseradish peroxidase study.
    Brain Res. 1980 Feb 10;183(2):458-65 PMID: 7353151
  29. Structural analysis of the human hydroxyindole-O-methyltransferase gene. Presence of two distinct promoters.
    J Biol Chem. 1994 Dec 16;269(50):31969-77 PMID: 7989373
  30. Encephalopsin: a novel mammalian extraretinal opsin discretely localized in the brain.
    J Neurosci. 1999 May 15;19(10):3681-90 PMID: 10234000
  31. The retinohypothalamic tract originates from a distinct subset of retinal ganglion cells.
    J Comp Neurol. 1995 Feb 13;352(3):351-66 PMID: 7706557
  32. Spectral sensitivity of a novel photoreceptive system mediating entrainment of mammalian circadian rhythms.
    Nature. 1984 Mar 8-14;308(5955):186-8 PMID: 6700721
  33. Molecular characterization of the pigeon P-opsin gene.
    Gene. 1996 Dec 5;182(1-2):213-4 PMID: 8982090
  34. An STS-based radiation hybrid map of the human genome.
    Genome Res. 1997 May;7(5):422-33 PMID: 9149939
  35. Invertebrate visual pigments.
    Photochem Photobiol. 1995 Jul;62(1):1-16 PMID: 7638252
  36. A human opsin-related gene that encodes a retinaldehyde-binding protein.
    Biochemistry. 1994 Nov 8;33(44):13117-25 PMID: 7947717
  37. Melanopsin: An opsin in melanophores, brain, and eye.
    Proc Natl Acad Sci U S A. 1998 Jan 6;95(1):340-5 PMID: 9419377
  38. Expression of visual and nonvisual opsins in American chameleon.
    Vision Res. 1997 Jul;37(14):1867-71 PMID: 9274772
  39. Differential regulation of mammalian period genes and circadian rhythmicity by cryptochromes 1 and 2.
    Proc Natl Acad Sci U S A. 1999 Oct 12;96(21):12114-9 PMID: 10518585
  40. Pineal opsin: a nonvisual opsin expressed in chick pineal.
    Science. 1995 Mar 10;267(5203):1502-6 PMID: 7878470
  41. CLUSTAL W: improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gap penalties and weight matrix choice.
    Nucleic Acids Res. 1994 Nov 11;22(22):4673-80 PMID: 7984417
  42. Light-independent role of CRY1 and CRY2 in the mammalian circadian clock.
    Science. 1999 Oct 22;286(5440):768-71 PMID: 10531061
  43. Circadian photoreception in the retinally degenerate mouse (rd/rd).
    J Comp Physiol A. 1991 Jul;169(1):39-50 PMID: 1941717
  44. Photoentrainment in mammals: a role for cryptochrome?
    J Biol Rhythms. 1999 Feb;14(1):4-10 PMID: 10036987
  45. Single-step method of RNA isolation by acid guanidinium thiocyanate-phenol-chloroform extraction.
    Anal Biochem. 1987 Apr;162(1):156-9 PMID: 2440339
Article Info
Journal
The Journal of neuroscience : the official journal of the Society for Neuroscience
Abbr.
J Neurosci
ISSN
1529-2401
Published
2000-01-15
Pages
600-5
Language
English
Region
United States
NLM ID
8102140
PMCID
PMC6772411
Subset
IM
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