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Neurons and their synaptic organization in the visual cortex of the rat

Electron microscopy of Golgi preparations

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Summary

Cells in the visual cortex (area 17) of adult rats were impregnated by the rapid Golgi method and characterized by light microscopy. Selected cells were then sectioned for electron microscopy and their cytological characteristics and the pattern of synapses on their cell bodies and dendrites were studied Twelve classical pyramidal cells from layers II–VI, two pyramid-like cells from layer VI, two inverted pyramidal cells from layers V and VI, ten spine-free non-pyramidal cells from layers II–VI and two spinous non-pyramidal cells from layer IV were examined.

The cytoplasmic features of the identified cells, where these could be discerned, corresponded to those previously reported for the different cell types in conventionally prepared tissue.

Pyramidal Cells received exclusively type 2 synaptic contacts on their cell bodies, type 1 contacts on their dendritic spines and a mixture of synaptic types (type II predominating) on their shafts, where synaptic density was relatively low. This pattern of synaptic contacts was consistent for all portions of the dendritic tree; inverted pyramidal cells and pyramid-like cells showed the same synaptic organization as classical pyramids. The axon collaterals of pyramidal cells established type I contacts with dendritic spines (or, rarely, shafts) of unknown origin.

Non-Pyramidal Cells received both type 1 and type 2 contacts (the former predominating) on their cell bodies and dendrites. The spinous variety also received type I contacts on their dendritic spines. Axon terminal of spine-free non-pyramidal cells established type II synaptic contacts with dendritic shafts of unknown origin. The similarity in synaptic organization between the spine-free and spinous non-pyramidal cells examined in this study suggest that the latter correspond to the sparsely spinous stellate cells rather than to the spinous stellate cells of cat and monkey visual cortex.

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References

  • Blackstad, T.W.: Mapping of experimental axon degeneration by electron microscopy of Golgi preparations. Z. Zellforsch. 67, 819–834 (1965)

    Google Scholar 

  • Blackstad, T.W.: Electron microscopy of experimental axonal degeneration in photochemically modified Golgi preparations: A procedure for precise mapping of nervous connections. Brain Res. 95, 191–210 (1975)

    Google Scholar 

  • Christensen, B.N., Ebner, F.F.: The synaptic architecture of neurons in opossum somatic sensory — motor cortex: A combined anatomical and physiological study. J. Neurocytol. (in press, 1978).

  • Colonnier, M.: Synaptic patterns on different cell types in the different laminae of the cat visual cortex. Brain Res. 9, 268–287 (1968)

    Google Scholar 

  • Fairén, A., Peters, A., Saldanha, J.: A new procedure for examining Golgi-impregnated neurons by light and electron microscopy. J. Neurocytol. 6, 311–337 (1977)

    Google Scholar 

  • Garey, L.J.: A light and electron microscopic study of the visual cortex of the cat and monkey. Proc. roy. Soc. B 179, 21–40 (1971)

    Google Scholar 

  • Garey, L.J., Powell, T.P.S.: An experimental study of the termination of the lateral geniculo-cortical pathway in the cat and monkey. Proc. roy. Soc. B 179, 41–63 (1971)

    Google Scholar 

  • Gilbert, C.D., Kelly, J.P.: The projections of cells in different layers in the cat's visual cortex. J. comp. Neurol. 163, 81–106 (1975)

    Google Scholar 

  • Globus, A.: Neuronal ontogeny: Its use in tracing connectivity. In: Brain development and behavior, edit. by Sterman, M.B., McGinty, D.J. and Adinolfi, A.M., pp. 253–263. New York: Academic Press 1971

    Google Scholar 

  • Gray, E.G.: Axo-somatic and axo-dendritic synapses in the cerebral cortex: an electron microscopic study. J. Anat. (Lond.) 93, 420–433 (1959)

    Google Scholar 

  • Ito, H., Atencio, F.: Staining methods for an electron microscopic analysis of Golgi impregnated nervous tissue and a demonstration of the synaptic distribution upon pulvinar neurons. J. Neurocytol. 5, 297–317 (1976)

    Google Scholar 

  • Ito, H., Kishida, R.: A Golgi-type impregnation method for electron microscopy. J. Hirnforsch. 15, 409–417 (1974)

    Google Scholar 

  • Jacobson, S., Trojanowski, J.Q.: The cells of origin of the corpus callosum in rat, cat and rhesus monkey. Brain Res. 74, 149–155 (1974)

    Google Scholar 

  • Jacobson, S., Trojanowski, J.Q.: Corticothalamic neurons and thalamocortical terminal fields: An investigation in rat using horseradish peroxidase and autoradiography. Brain Res. 85, 385–401 (1975)

    Google Scholar 

  • Jones, E.G., Powell, T.P.S.: Electron microscopy of the somatic sensory cortex of the cat. 1. Cell types and synaptic organization. Phil. Trans. B 257, 1–11 (1970a)

    Google Scholar 

  • Jones, E.G., Powell, T.P.S.: An electron microscopic study of the laminar pattern and mode of termination of afferent fibre pathways in the somatic sensory cortex of the cat. Phil. Trans. B 257, 45–62 (1970b)

    Google Scholar 

  • Kolb, H., West, R.W.: Synaptic connections of the interplexiform cell in the retina of the cat. J. Neurocytol. 6, 155–170 (1977)

    Google Scholar 

  • Le Vay, S.: Synaptic patterns in the visual cortex of the cat and monkey. Electron microscopy of Golgi preparations. J. comp. Neurol. 150, 53–86 (1973)

    Google Scholar 

  • Lieberman, A.R., Webster, K.E.: Aspects of the synaptic organization of intrinsic neurons in the dorsal lateral geniculate nucleus. An ultrastructural study of the normal and of the experimentally deafferented nucleus in the rat. J. Neurocytol. 3, 677–710 (1974)

    Google Scholar 

  • Lund, J.S., Lund, R.D.: The termination of callosal fibres in the paravisual cortex of the rat. Brain Res. 17, 25–45 (1970)

    Google Scholar 

  • Lund, J.S., Lund, R.D., Hendrickson, A.E., Bunt, A.H., Fuchs, A.F.: The origin of efferent pathways from the primary visual cortex, area 17, of the Macaque monkey as shown by retrograde transport of horseradish peroxidase. J. comp. Neurol. 164, 287–304 (1975)

    Google Scholar 

  • Lund, R.D.: Synaptic patterns of the superficial layers of the superior colliculus of the rat. J. comp. Neurol. 135, 179–208 (1969)

    Google Scholar 

  • Palay, S.L., Chan-Palay, V.: Cerebellar cortex: Cytology and organization. Chap. XII, Methods. Berlin-Heidelberg-New York: Springer 1974

    Google Scholar 

  • Parnavelas, J.G., Lieberman, A.R., Webster, K.E.: Organization of neurons in the visual cortex, area 17, of the rat J. Anat. (Lond.), (in press, 1977)

  • Peters, A.: The fixation of central nervous tissue and the analysis of electron micrographs of the neuropil, with special reference to the cerebral cortex. In: Contemporary research methods in neuroanatomy, edit. by Nauta, W.J.H. and Ebbesson, S.O.E., pp. 57–76. Berlin-Heidelberg-New York: Springer1970

    Google Scholar 

  • Peters, A.: Stellate cells of the rat parietal cortex. J. comp. Neurol. 141, 345–374 (1971)

    Google Scholar 

  • Peters, A., Feldman, M., Saldanha, J.: The projection of the lateral geniculate nucleus to area 17 of the rat cerebral cortex. 11. Terminations upon neuronal perikarya and dendritic shafts. J. Neurocytol. 5, 85–107 (1977)

    Google Scholar 

  • Peters, A., Kaiserman-Abramof, I.R.: The small pyramidal neuron in the rat cerebral cortex. The perikaryon, dendrites and spines. Amer. J. Anat. 127, 321–356 (1970)

    Google Scholar 

  • Pinching, A.J., Brooke, R.N.L.: Electron microscopy of single cells in the olfactory bulb using Golgi impregnation. J. Neurocytol. 2, 157–170 (1973)

    Google Scholar 

  • Ramón-Moliner, E., Ferrari, J.: Electron microscopy of previously identified cells and processes within the central nervous system. J. Neurocytol. 1, 85–100 (1972)

    Google Scholar 

  • Sloper, J. J.: An electron microscope study of neurons of the primate motor and somatic sensory cortices. J. Neurocytol. 2, 351–359 (1973)

    Google Scholar 

  • Stell, W.K.: Correlation of retinal cytoarchitecture and ultrastructure in Golgi preparations. Anat Rec. 153, 389–398 (1965)

    Google Scholar 

  • Stell, W.K.: The structure and relationships of horizontal cells and photoreceptor-bipolar synaptic complexes in goldfish retina. Amer. J. Anat. 121, 401–424 (1967)

    Google Scholar 

  • Szentágothai, J.: Synaptology in the visual cortex. In: Handbook of sensory physiology. Vol. VII/3, Central processing of visual information. Part B. Visual centres of brain, edit. by Jung, R., pp. 269–324. Berlin-Heidelberg-New York: Springer 1973

    Google Scholar 

  • Winfield, D.A., Powell, T.P.S.: The termination of thalamocortical fibres in the visual cortex of the cat. J. Neurocytol. 5, 269–281 (1976)

    Google Scholar 

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We thank the Medical Research Council for financial support

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Parnavelas, J.G., Sullivan, K., Lieberman, A.R. et al. Neurons and their synaptic organization in the visual cortex of the rat. Cell Tissue Res. 183, 499–517 (1977). https://doi.org/10.1007/BF00225663

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