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A Golgi study of the isthmic nuclei in the pigeon (Columba Iivia)

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Summary

The isthmic nuclei of the pigeon were studied with the use of three different Golgi techniques. The nucleus isthmo-opticus (IO) consists of a single cell type in which all dendrites of one neuron take the same direction and ramify at identical distances from the perikaryon to form dense dendritic arborizations. The cell bodies of the IO neurons form two parallel layers. The dendrites of these neurons always extend to the area between the two layers so that the dendritic arborizations of opposite neurons overlap. A model of the cellular organization of the IO was constructed based upon these morphological characteristics. The neurons of the n. isthmi/pars parvocellularis (Ipc) have oval perikarya and long, smooth, infrequently branching dendrites. All neurons except those at the borders of the nucleus show the same dorsoventral orientation in their dendritic arborizations and together with their afferents seem to have a columnar organization. The dendrites of the neurons located at the margin of the nucleus ramify within the Ipc along its border. The n. semilunaris (Slu) consists of neurons with round somata that have on an average three dendrites with small spines. The axons leave the nucleus from the medial side and join the lemniscus lateralis. The neurons of the n. isthmi/pars magnocellularis (Imc) comprise a generalized isodendritic type resembling the cells of the reticular formation. Axons from the tectum penetrate the nucleus, making numerous en-passant contacts with several neurons.

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References

  • Angaut P, Repérant J (1978) A light and electron microscopic study of the nucleus isthmo-opticus in the pigeon. Arch Microsc Morph Exp 67:63–78

    Google Scholar 

  • Ariëns Kappers CU, Huber GC, Crosby EC (1936) The comparative anatomy of the nervous system of vertebrates, including man. Hafner Publ Comp, New York

    Google Scholar 

  • Boord RL (1968) Ascending projections of the primary cochlear nuclei and nucleus laminaris in the pigeon. J Comp Neurol 133:523–530

    Google Scholar 

  • Clarke PGH, Caranzano F (1985) Dendritic development in the isthmo-optic nucleus of chick embryos. Dev Neurosci 7:161–169

    Google Scholar 

  • Clarke PGH, Cowan WM (1976) The development of the isthmo-optic tract in the chick, with special reference to the occurrence and correction of developmental errors in the location and connections of isthmo-optic neurons. J Comp Neurol 167:143–164

    Google Scholar 

  • Correia MJ, Eden AR, Westlund KN, Coulter JD (1982) Organization of ascending auditory pathways in the pigeon (Columba livid) as determined by autoradiographic methods. Brain Res 243:205–212

    Google Scholar 

  • Cotter JR (1976) Visual and non-visual units recorded from the optic tectum of Gallus domesticus. Brain Behav Evol 13:1–21

    Google Scholar 

  • Cowan WM (1970) Centrifugal fibres to the avian retina. Br Med Bull 26:112–119

    Google Scholar 

  • Crossland WJ (1979) Identification of tectal synaptic terminals in the avian isthmo-optic nucleus. In: Granda AM, Maxwell JH (eds) Neural Mechanisms of Behavior in the Pigeon. Plenum Publishing Press, New York, pp 267–286

    Google Scholar 

  • Erulkar SD (1955) Tactile and auditory areas in the brain of the pigeon. J Comp Neurol 103:421–452

    Google Scholar 

  • Harman AL, Phillips RE (1967) Responses on the avian midbrain, thalamus and forebrain evoked by click stimuli. Exp Neurol 18:276–286

    Google Scholar 

  • Hayes BP, Holden AL (1983) The distribution of centrifugal terminals in the pigeon retina. Exp Brain Res 49:180–197

    Google Scholar 

  • Holden AL, Powell TPS (1972) The functional organization of the isthmo-optic nucleus in the pigeon. J Physiol (London) 223:419–447

    Google Scholar 

  • Hunt SP, Künzle H (1976) Observations on the projections and intrinsic organization of the pigeon optic tectum: an autoradiographic study based on anterograde and retrograde, axonal and dendritic flow. J Comp Neurol 170:153–172

    Google Scholar 

  • Hunt SP, Streit P, Künzle H, Cuénod M (1977) Characterization of the pigeon isthmo-tectal pathway by selective uptake and retrograde movement of radioactive compounds and by Golgilike horseradish peroxidase labeling. Brain Res 129:197–212

    Google Scholar 

  • Karten HJ (1967) The organization of the ascending auditory pathways in the pigeon (Columba livia). I. Diencephalic projections of the inferior colliculus (nucleus mesencephali lateralis, pars dorsalis). Brain Res 6:409–427

    Google Scholar 

  • Karten HJ, Hodos W (1967) A Stereotaxic Atlas of the Brain of the Pigeon. The Johns Hopkins Press, Baltimore, Maryland

    Google Scholar 

  • Kniepling RR (1978) No deficit in near-field visual acuity of pigeons after transection of the isthmo-optic tract. Physiol Behav 21:813–816

    Google Scholar 

  • Künzle H, Schneyder H (1984) The isthmo-tegmentum complex in the turtle and rat: a comparative analysis of its interconnections with the optic tectum. Exp Brain Res 56:509–522

    Google Scholar 

  • Mallin HD, Delius JD (1983) Inter- and intraocular transfer of colour discriminations with mandibulation as an operant in the head-fixed pigeon. Behav Anal Lett 3:297–309

    Google Scholar 

  • Maturana HR, Frenk S (1965) Synaptic connections of the centrifugal fibers in the pigeon retina. Science 150:359–361

    Google Scholar 

  • McGill JI, Powell TPS, Cowan WM (1966a) The retinal representation upon the optic tectum and isthmo optic nucleus in the pigeon. J Anat 100:5–33

    Google Scholar 

  • McGill JI, Powell TPS, Cowan WM (1966b) The organization of the projection of the centrifugal fibres to the retina in the pigeon. J Anat 100:35–49

    Google Scholar 

  • Mestres P, Lafarga M (1972) Cholinesterase activity in the perineural net. Ann Histochem 17:135–139

    Google Scholar 

  • Miles FA (1972a) Centrifugal control of the avian retina. III. Effects of electrical stimulation of the isthmo-optic tract on the receptive field properties of retinal ganglion cells. Brain Res 48:115–129

    Google Scholar 

  • Miles FA (1972b) Centrifugal control of the avian retina. IV. Effects of reversible cold block of the isthmo-optic tract on the receptive field properties of cells in the retina and isthmo-optic nucleus. Brain Res 48:131–145

    Google Scholar 

  • Newman JD (1970) Midbrain regions relevant to auditory communication in songbirds. Brain Res 22:259–261

    Google Scholar 

  • Pearlman AL, Hughes CP (1976) Functional role of efferents to the isthmo-optic nucleus. J Comp Neurol 166:123–132

    Google Scholar 

  • Phillips RE (1964) ‘Wildness’ in the mallard duck: effects of brain lesions and stimulation on ‘escape behavior’ and reproduction. J Comp Neurol 1964:139–156

    Google Scholar 

  • Ramón-Moliner E (1962) An attempt at classifying nerve cells on the basis of their dendritic patterns. J Comp Neurol 119:211–227

    Google Scholar 

  • Ramón-Moliner E (1970) The Golgi-Cox technique. In: Nauta WHJ, Ebbeson SOE (eds) Contemporary Research Methods in Neuroanatomy. Springer-Verlag, Berlin, Heidelberg, New York

    Google Scholar 

  • Ramón-Moliner E, Nauta WJH (1966) The isodendritic core of the brain stem. J Comp Neurol 126:311–336

    Google Scholar 

  • Rogers LJ, Miles FA (1972) Centrifugal control of the avian retina. V. Effects of lesions of the isthmo-optic nucleus on visual behavior. Brain Res 48:147–156

    Google Scholar 

  • Schall U, Güntürkün O, Delius JD (1986) Sensory projections to the nucleus basalic prosencephali of the pigeon. Cell Tissue Res 245:539–546

    Google Scholar 

  • Scheibel AB (1981) The problem of selective attention: a possible structural substrate. In: Pompeiano O, Ajmone Marsan C (eds) Brain mechanisms and perceptual awareness. Raven Press, New York, pp 319–326

    Google Scholar 

  • Seller TJ (1981) Midbrain vocalization centres in birds. TINS 4:301–303

    Google Scholar 

  • Shortess GK, Klose EF (1977) Effects of lesions involving efferent fibers to the retina in pigeons. Physiol Behav 18:409–414

    Google Scholar 

  • Showers MJC, Lyons P (1968) Avian nucleus isthmi and its relation to hippus. J Comp Neurol 132:589–616

    Google Scholar 

  • Streit P, Knecht E, Cuénod M (1980) Transmitter related retrograde labelling in the pigeon optic lobe: a high resolution autoradiographic study. Brain Res 187:59–67

    Google Scholar 

  • Valverde F (1970) The Golgi method. A tool for comparative structural analysis. In: Nauta WJH, Ebbesson SOE (eds) Contemporary Research Methods in Neuroanatomy. Springer Verlag, Berlin Heidelberg New York, pp 12–31

    Google Scholar 

  • Wallenberg A (1898) Die secundäre Acusticusbahn der Taube. Anat Anz 14:353

    Google Scholar 

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Güntürkün, O. A Golgi study of the isthmic nuclei in the pigeon (Columba Iivia). Cell Tissue Res. 248, 439–448 (1987). https://doi.org/10.1007/BF00218211

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