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The topographical relationship between two neuronal mosaics in the short wavelength-sensitive system of the primate retina

Published online by Cambridge University Press:  02 June 2009

Nobuo Kouyama
Affiliation:
Department of Physiology, Tokyo Women's Medical College, 8-1, Kawada Cho, Shinjuku, Tokyo 162, Japan
David W. Marshak
Affiliation:
Department of Neurobiology and Anatomy, University of Texas, Medical School at Houston, Houston

Abstract

The short wavelength-sensitive (blue) cone bipolar cells was found to have a nonrandom distribution by analyzing the nearest neighbors and by calculating the density recovery profile (DRP). Blue cones had been shown previously to have a nonrandom distribution (Curcio et al., 1991). The relationship between the two arrays was then analyzed by calculating the cross-correlational density recovery profile (cDRP), which indicates the local density of blue cones around each blue cone bipolar cell. Although both cell types appeared to be distributed uniformly at the macroscopic level, the cDRP was 1.7 times higher within 15 μm of each bipolar cell perikaryon than in the surrounding area. The area of higher density was approximately the same as that in which the blue cone bipolar cells made synaptic contacts with blue cones. The finding that the blue cones and the blue cone bipolar cells were closer together than expected suggests that the positions of the perikarya of these neurons were influenced by their synaptic connections or other developmental interactions.

Type
Research Articles
Copyright
Copyright © Cambridge University Press 1997

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References

Calkins, D.J., Schein, S.J., Tsukamoto, Y. & Sterling, P. (1994). M and L cones in macaque fovea connect to midget ganglion cells by different numbers of excitatory synapses. Nature 371, 7072.CrossRefGoogle ScholarPubMed
Chen, J., Tucker, C.L., Woodford, B., Szél, Á., Lem, J., Gianella-Borradori, A., Simon, M.I. & Bogenmann, E. (1994). The human blue opsin promoter directs transgene expression in short-wave cones and bipolar cells in the mouse retina. Proceeding of the National Academy of Sciences of the U.S.A. 91, 26112615.Google Scholar
Chiu, M.I. & Nathans, J. (1994). Blue cones and cone bipolar cells share transcriptional specificity as determined by expression of human blue visual pigment-derived transgenes. Journal of Neuroscience 14, 34263436.CrossRefGoogle ScholarPubMed
Cook, J.E. & Sharma, S.C. (1995). Large retinal ganglion cells in the channel catfish (Ictalurus punctatus); three types with distinct dendritic stratification patterns form similar but independent mosaics. Journal of Comparative Neurology 362, 331349.Google Scholar
Curcio, C.A., Allen, K.A., Sloan, K.R., Lerea, C.L., Hurtley, J.B., Klock, I.B. & Milam, A.H. (1991). Distribution and morphology of human cone photoreceptors stained with anti-blue opsin. Journal of Comparative Neurology 312, 610624.CrossRefGoogle ScholarPubMed
Curcio, C.A. & Sloan, K.R. (1992). Packing geometry of human cone photoreceptors: Variation with eccentricity and evidence for local anisotropy. Visual Neuroscience 9, 169180.Google Scholar
de Monasterio, F.M., McCrane, E.P., Newlander, J.K. & Schein, S.J. (1985). Density profile of blue-sensitive cones along the horizontal meridian of macaque retina. Investigative Ophthalmology and Visual Science 26, 289302.Google Scholar
Kouyama, N. & Marshak, D.W. (1992). Bipolar cells specific for blue cones in the macaque retina. Journal of Neuroscience 12, 12331252.CrossRefGoogle ScholarPubMed
Marshak, D.W., Aldrich, L.B., Del Valle, J. & Yamada, T. (1990). Localization of immunoreactive cholecystokinin precursor to amacrine cells and bipolar cells of the macaque monkey retina. Journal of Neuroscience 10, 30453055.CrossRefGoogle ScholarPubMed
Marshak, D., Jacoby, R., Stafford, D. & Kouyama, N. (1995). Blue cone bipolar cells of the macaque retina. In Color Vision Deficiencies XII, ed. Drum, B., pp. 277283. Dordrecht, Netherlands: Kluwer Academic Publishers.CrossRefGoogle Scholar
McCrane, E.P., de Monasterio, F.M., Schein, S.J. & Caruso, R.C. (1983). Non-fluorescence dye staining of primate blue cones. Investigative Ophthalmology and Visual Science 24, 14491455.Google Scholar
Mollon, J.D. & Bowmaker, J.K. (1992). The spatial arrangement of cones in the primate fovea. Nature 360, 677679.Google Scholar
Pum, D., Ahnelt, P.K. & Grasl, M. (1990). Iso-orientation areas in the foveal cone mosaic. Visual Neuroscience 5, 511523.CrossRefGoogle ScholarPubMed
Reese, B.E., Harvey, A.R. & Tan, S.-S. (1995). Radial and tangential dispersion patterns in the mouse retina are cell-class specific. Proceedings of the National Academy of Sciences of the U.S.A. 92, 24942498.CrossRefGoogle ScholarPubMed
Rodieck, R.W. (1991). The density recovery profile: A method for the analysis of points in the plane applicable to retinal studies. Visual Neuroscience 6, 95111.Google Scholar
Rodieck, R.W. & Marshak, D.W. (1992). Spatial density and distribution of choline acetyltransferase immunoreactive cells in human, macaque, and baboon retinas. Journal of Comparative Neurology 321, 4664.CrossRefGoogle ScholarPubMed
Shapiro, M.B., Schein, S.J. & de Monasterio, F.M. (1985). Regularity and structure of the spatial pattern of blue cones of macaque retina. Journal of American Statistical Association 80, 803814.CrossRefGoogle Scholar
Tauchi, M. & Masland, R.H. (1985). Local order among the dendrites of an amacrine cell population. Journal of Neuroscience 5, 24942501.CrossRefGoogle ScholarPubMed
Vaney, D.I. (1994 a). Territorial organization of direction-sensitive cells in rabbit retina. Journal of Neuroscience 14, 63016316.CrossRefGoogle Scholar
Vaney, D.I. (1994 b). Patterns of neuronal coupling in the retina. Progress in Retinal and Eye Research 13, 301355.CrossRefGoogle Scholar
Wässle, H. & Boycott, B.B. (1991). Functional architecture of the mammalian retina. Physiological Reviews 71, 447480.Google Scholar
Wässle, H., Grünert, U., Martin, P.R. & Boycott, B.B. (1994). Immunocytochemical characterization and spatial distribution of midget bipolar cells in the macaque monkey retina. Vision Research 5, 561579.CrossRefGoogle Scholar
Wässle, H. & Riemann, H.J. (1978). The mosaic of nerve cells in the mammalian retina. Proceedings of the Royal Society B (London) 200, 441461.Google ScholarPubMed