Home LiteratureArticle Details
PMID: 15201336 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Cone photoreceptors in bass retina use two connexins to mediate electrical coupling.

O'Brien J, Nguyen HB, Mills SL

Abstract

Electrical coupling via gap junctions is a common property of CNS neurons. In retinal photoreceptors, coupling plays important roles in noise filtering, intensity coding, and spatial processing. In many vertebrates, coupling is regulated during the course of light adaptation. To understand the mechanisms of this regulation, we studied photoreceptor gap junction proteins. We found that two connexins were expressed in bass cone photoreceptors. Connexin 35 (Cx35) mRNA was present in many cell types, including photoreceptors and amacrine, bipolar, and a few ganglion cells. Antibodies to Cx35 labeled abundant gap junctions in both the inner and outer plexiform layers. In the outer plexiform layer, numerous plaques colocalized with cone telodendria at crossing contacts and tip-to-tip contacts. Cx34.7 mRNA was found predominantly in the photoreceptor layer, primarily in cones. Cx34.7 immunolabeling was limited to small plaques immediately beneath cone pedicles and did not colocalize with Cx35. Cx34.7 plaques were associated with a dense complex of cone membrane beneath the pedicles, including apparent contacts between telodendria and cone pedicles. Tracer coupling studies of the connexins expressed in HeLa cells showed that coupling through Cx35 gap junctions was reduced by protein kinase A (PKA) activation and enhanced by PKA inhibition through a greater than fivefold activity range. Cx34.7 was too poorly expressed to study. PKA regulation suggests that coupling through Cx35 gap junctions can be controlled dynamically through dopamine receptor pathways during light adaptation. If Cx34.7 forms functional cell-cell channels between cones, it would provide a physically separate pathway for electrical coupling.

MeSH Terms
Animals Bass Connexins/biosynthesis,genetics,physiology Cyclic AMP/physiology Cyclic AMP-Dependent Protein Kinases/physiology Eye Proteins/biosynthesis,genetics,physiology Fish Proteins/biosynthesis,genetics,physiology Gap Junctions/physiology HeLa Cells Humans Immunohistochemistry In Situ Hybridization Phosphorylation Retinal Cone Photoreceptor Cells/metabolism,physiology Reverse Transcriptase Polymerase Chain Reaction
Chemicals
Connexins Eye Proteins Fish Proteins connexin 35 protein, vertebrate Cyclic AMP Cyclic AMP-Dependent Protein Kinases
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
O'Brien John
Department of Ophthalmology and Visual Science, University of Texas Health Science Center, Houston, Texas 77030, USA. john.obrien@uth.tmc.edu
Nguyen H Bao
Mills Stephen L
References (61)
61 references, click to expand
  1. The immunocytochemical localization of connexin 36 at rod and cone gap junctions in the guinea pig retina.
    Eur J Neurosci. 2003 Dec;18(11):2925-34 PMID: 14656288
  2. Connexin35 mediates electrical transmission at mixed synapses on Mauthner cells.
    J Neurosci. 2003 Aug 20;23(20):7489-503 PMID: 12930787
  3. Gap junctions between photoreceptor cells in the vertebrate retina.
    Proc Natl Acad Sci U S A. 1973 Jun;70(6):1677-81 PMID: 4198274
  4. Interreceptoral junctions in the teleost retina.
    Invest Ophthalmol. 1974 Dec;13(12):996-1009 PMID: 4139137
  5. Colour receptors, and their synaptic connexions, in the retina of a cyprinid fish.
    Philos Trans R Soc Lond B Biol Sci. 1975 Feb 20;270(902):61-118 PMID: 234623
  6. Rod-rod interaction in the retina of the turtle.
    J Physiol. 1975 Apr;246(3):617-38 PMID: 1133789
  7. Cones excite rods in the retina of the turtle.
    J Physiol. 1975 Apr;246(3):639-51 PMID: 1133790
  8. Gap junctions in the differentiated neural retinae of newly hatched chickens.
    J Cell Sci. 1976 Dec;22(3):597-606 PMID: 1018047
  9. The relation between intercellular coupling and electrical noise in turtle photoreceptors.
    J Physiol. 1976 Dec;263(2):257-86 PMID: 1018249
  10. The organization of the outer plexiform layer in the retina of the cat: electron microscopic observations.
    J Neurocytol. 1977 Apr;6(2):131-53 PMID: 856949
  11. Photoreceptor coupling in retina of the toad, Bufo marinus. I. Anatomy.
    J Neurophysiol. 1979 Jan;42(1 Pt 1):292-310 PMID: 107280
  12. Electrotonic coupling between pyramidal cells: a direct demonstration in rat hippocampal slices.
    Science. 1981 Aug 14;213(4509):782-5 PMID: 6266013
  13. Gap junctions in the outer plexiform layer of te chick retina: thin section and freeze-fracture studies.
    J Neurocytol. 1981 Jun;10(3):515-29 PMID: 7310463
  14. Dopamine modulates S-potential amplitude and dye-coupling between external horizontal cells in carp retina.
    Nature. 1983 Jan 20;301(5897):243-6 PMID: 6401844
  15. Synaptic organization involving receptor, horizontal and on- and off-center bipolar cells in the catfish retina.
    Vision Res. 1983;23(4):339-51 PMID: 6880033
  16. Synaptic organization of the outer plexiform layer of the turtle retina: an electron microscope study of serial sections.
    J Neurocytol. 1984 Aug;13(4):567-91 PMID: 6481412
  17. Chemical synapses between turtle photoreceptors.
    Brain Res. 1984 Sep 24;310(2):351-4 PMID: 6488024
  18. Decrease of gap junction permeability induced by dopamine and cyclic adenosine 3':5'-monophosphate in horizontal cells of turtle retina.
    J Neurosci. 1984 Oct;4(10):2477-88 PMID: 6092564
  19. Dopamine inhibits forskolin- and 3-isobutyl-1-methylxanthine-induced dark-adaptive retinomotor movements in isolated teleost retinas.
    J Neurochem. 1985 Jun;44(6):1753-63 PMID: 2580951
  20. Electron microscopy of Golgi-impregnated photoreceptors reveals connections between red and green cones in the turtle retina.
    J Neurophysiol. 1985 Aug;54(2):304-17 PMID: 4031990
  21. Permeability properties of cell-to-cell channels: kinetics of fluorescent tracer diffusion through a cell junction.
    J Membr Biol. 1985;84(3):269-83 PMID: 4032457
  22. Telodendrites of cone photoreceptors: structure and probable function.
    J Comp Neurol. 1986 Jul 1;249(1):13-27 PMID: 2426311
  23. Microcircuitry of the dark-adapted cat retina: functional architecture of the rod-cone network.
    J Neurosci. 1986 Dec;6(12):3505-17 PMID: 3794785
  24. Signal clipping by the rod output synapse.
    Nature. 1987 Aug 6-12;328(6130):522-4 PMID: 3039370
  25. Retinal horizontal cell gap junctional conductance is modulated by dopamine through a cyclic AMP-dependent protein kinase.
    Proc Natl Acad Sci U S A. 1987 Oct;84(20):7319-23 PMID: 2823257
  26. Electrical coupling between rods and cones in the tiger salamander retina.
    Proc Natl Acad Sci U S A. 1988 Jan;85(1):275-8 PMID: 3422423
  27. Spatial spread of adaptation within the cone network of turtle retina.
    J Physiol. 1987 Dec;393:763-76 PMID: 3446810
  28. The effect of photoreceptor coupling and synapse nonlinearity on signal:noise ratio in early visual processing.
    Proc R Soc Lond B Biol Sci. 1988 Jul 22;234(1275):171-97 PMID: 2905460
  29. Modulation of rod-cone coupling by light.
    Science. 1989 Apr 21;244(4902):352-4 PMID: 2711185
  30. Modulation of an electrical synapse between solitary pairs of catfish horizontal cells by dopamine and second messengers.
    J Physiol. 1989 Jul;414:351-75 PMID: 2558170
  31. Early onset of phenotype and cell patterning in the embryonic zebrafish retina.
    Development. 1990 Jul;109(3):567-76 PMID: 2401210
  32. Identification of bipolar cell subtypes by protein kinase C-like immunoreactivity in the goldfish retina.
    Vis Neurosci. 1990 Sep;5(3):223-30 PMID: 2134845
  33. Dopaminergic modulation of gap junction permeability between amacrine cells in mammalian retina.
    J Neurosci. 1992 Dec;12(12):4911-22 PMID: 1281499
  34. Photoreceptors of mouse retinas possess D4 receptors coupled to adenylate cyclase.
    Proc Natl Acad Sci U S A. 1992 Dec 15;89(24):12093-7 PMID: 1334557
  35. Biophysical characterization of gap-junction channels in HeLa cells.
    Pflugers Arch. 1993 Aug;424(3-4):335-42 PMID: 7692394
  36. Differential properties of two gap junctional pathways made by AII amacrine cells.
    Nature. 1995 Oct 26;377(6551):734-7 PMID: 7477263
  37. Dye coupling between pyramidal neurons in developing rat prefrontal and frontal cortex is reduced by protein kinase A activation and dopamine.
    J Neurosci. 1995 Nov;15(11):7386-400 PMID: 7472492
  38. A circadian clock regulates rod and cone input to fish retinal cone horizontal cells.
    Proc Natl Acad Sci U S A. 1996 May 14;93(10):4655-60 PMID: 8643459
  39. Light-induced modulation of coupling between AII amacrine cells in the rabbit retina.
    Vis Neurosci. 1997 May-Jun;14(3):565-76 PMID: 9194323
  40. Electrical coupling underlies high-frequency oscillations in the hippocampus in vitro.
    Nature. 1998 Jul 9;394(6689):189-92 PMID: 9671303
  41. The kinetics of tracer movement through homologous gap junctions in the rabbit retina.
    Vis Neurosci. 1998 Jul-Aug;15(4):765-77 PMID: 9682877
  42. Dopamine D2 receptor-mediated modulation of rod-cone coupling in the Xenopus retina.
    J Comp Neurol. 1998 Sep 7;398(4):529-38 PMID: 9717707
  43. Cloning and expression of two related connexins from the perch retina define a distinct subgroup of the connexin family.
    J Neurosci. 1998 Oct 1;18(19):7625-37 PMID: 9742134
  44. Cloning of a new gap junction gene (Cx36) highly expressed in mammalian brain neurons.
    Eur J Neurosci. 1998 Mar;10(3):1202-8 PMID: 9753189
  45. Photoreceptor coupling and boundary detection.
    Vision Res. 1998 Oct;38(20):3161-9 PMID: 9893823
  46. Two networks of electrically coupled inhibitory neurons in neocortex.
    Nature. 1999 Nov 4;402(6757):75-9 PMID: 10573419
  47. Immunogold evidence that neuronal gap junctions in adult rat brain and spinal cord contain connexin-36 but not connexin-32 or connexin-43.
    Proc Natl Acad Sci U S A. 2000 Jun 20;97(13):7573-8 PMID: 10861019
  48. Functional expression of the murine connexin 36 gene coding for a neuron-specific gap junctional protein.
    J Membr Biol. 2000 Aug 1;176(3):249-62 PMID: 10931976
  49. Differential modulation of rod and cone calcium currents in tiger salamander retina by D2 dopamine receptors and cAMP.
    Eur J Neurosci. 2000 Oct;12(10):3537-48 PMID: 11029623
  50. Expression of neuronal connexin36 in AII amacrine cells of the mammalian retina.
    J Neurosci. 2001 Jan 1;21(1):230-9 PMID: 11150340
  51. Rod pathways in the mammalian retina use connexin 36.
    J Comp Neurol. 2001 Jul 30;436(3):336-50 PMID: 11438934
  52. Synchronous activity of inhibitory networks in neocortex requires electrical synapses containing connexin36.
    Neuron. 2001 Aug 16;31(3):477-85 PMID: 11516403
  53. Impaired electrical signaling disrupts gamma frequency oscillations in connexin 36-deficient mice.
    Neuron. 2001 Aug 16;31(3):487-95 PMID: 11516404
  54. Dysfunctional light-evoked regulation of cAMP in photoreceptors and abnormal retinal adaptation in mice lacking dopamine D4 receptors.
    J Neurosci. 2002 Mar 15;22(6):2063-73 PMID: 11896146
  55. AII (Rod) amacrine cells form a network of electrically coupled interneurons in the mammalian retina.
    Neuron. 2002 Mar 14;33(6):935-46 PMID: 11906699
  56. Reduction of high-frequency network oscillations (ripples) and pathological network discharges in hippocampal slices from connexin 36-deficient mice.
    J Physiol. 2002 Jun 1;541(Pt 2):521-8 PMID: 12042356
  57. Neurochemical anatomy of the zebrafish retina as determined by immunocytochemistry.
    J Neurocytol. 2001 Jul;30(7):551-92 PMID: 12118162
  58. Dopamine mediates circadian clock regulation of rod and cone input to fish retinal horizontal cells.
    J Physiol. 2002 Nov 1;544(Pt 3):801-16 PMID: 12411525
  59. Connexin36 is essential for transmission of rod-mediated visual signals in the mammalian retina.
    Neuron. 2002 Nov 14;36(4):703-12 PMID: 12441058
  60. Electrical coupling between mammalian cones.
    Curr Biol. 2002 Nov 19;12(22):1900-7 PMID: 12445382
  61. Synaptic connections linking cones and horizontal cells in the retina of the pikeperch (Stizostedion vitreum).
    J Comp Neurol. 1979 Aug 15;186(4):541-59 PMID: 15116688
Article Info
Journal
The Journal of neuroscience : the official journal of the Society for Neuroscience
Abbr.
J Neurosci
ISSN
1529-2401
Published
2004-06-16
Pages
5632-42
Language
English
Region
United States
NLM ID
8102140
PMCID
PMC2222551
Subset
IM
Grants
NEI NIH HHS · R01 EY012857-04 · United States
NEI NIH HHS · EY10121 · United States
NEI NIH HHS · R01 EY010121-09 · United States
NEI NIH HHS · R01 EY010121 · United States
NEI NIH HHS · P30 EY010608-11 · United States
NEI NIH HHS · R01 EY012857 · United States
NEI NIH HHS · EY10608 · United States
NEI NIH HHS · EY12857 · United States
NEI NIH HHS · P30 EY010608 · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com