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Tonotopic organization in the medial geniculate body (MGB) of lightly anesthetized cats

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Summary

In the medial geniculate body (MGB) of nitrous oxide anesthetized cats, the pars lateralis (PL) was the only nucleus to show a clear topographic arrangement of its neurons according to their characteristic frequency (CF). When compared to barbiturate anesthetized cats (Imig and Morel 1985a), the tonotopic organization in PL appeared less strict and was characterized by a significant local CF disparity. Furthermore, the degree of tonotopic organization varied along the rostrocaudal axis of the nucleus: it was lower in its caudal than in its rostral half. In the pars ovoidea, the rostral half of the pars magnocellularis (PM) and the suprageniculate nucleus, CF sequences and quantitative evaluations of the tonotopicity indicated the presence of some degree of tonotopic organization which was lower than in PL. No such organization was observed in the caudal part of PM nor in the ventrolateral nucleus, while in the dorsal nucleus, the proportion of toneresponding units was too low for a significant analysis.

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References

  • Abeles M, Goldstein MH Jr (1970) Functional architecture in cat primary auditory cortex: columnar organization and organization according to depth. J Neurophysiol 33: 172–187

    Google Scholar 

  • Aitkin LM (1973) Medial geniculate body of the cat: responses to tonal stimuli of neurons in medial division. J Neurophysiol 36: 275–283

    Google Scholar 

  • Aitkin LM (1976) Tonotopic organization at higher levels of the auditory pathways. In: Neurophysiology II, Vol 10. University Park Press, Baltimore, pp 249–279

    Google Scholar 

  • Aitkin LM, Webster WR (1972) Medial geniculate body of the cat: organization and responses to tonal stimuli of neurons in ventral division. J Neurophysiol 35: 365–380

    Google Scholar 

  • Andersen RA, Roth GL, Aitkin LM, Merzenich MM (1980a) The efferent projections of the central nucleus and the pericentral nucleus of the inferior colliculus in the cat. J Comp Neurol 194: 640–662

    Google Scholar 

  • Andersen RA, Knight PL, Merzenich MM (1980b) The thalamocortical and corticothalamic connections of AI, AII and the anterior auditory field (AAF) in the cat: evidence for two largely segregated systems of connections. J Comp Neurol 194: 663–701

    Google Scholar 

  • Berman AL (1968) The brain stem of the cat. A cytoarchitectonic atlas with stereotaxic coordinates. University of Wisconsin Press, Madison

    Google Scholar 

  • Blum PS, Abraham LD, Gilman S (1979) Vestibular, auditory, and somatic input to the posterior thalamus of the cat. Exp Brain Res 34: 1–9

    Google Scholar 

  • Bourk TR, Mielcarz JP, Norris BE (1981) Tonotopic organization of the anteroventral cochlear nucleus of the cat. Hearing Res 4: 215–241

    Google Scholar 

  • Calford MB (1983) The parcellation of the medial geniculate body of the cat defined by auditory responses properties of single units. J Neurosci 3: 2350–2364

    Google Scholar 

  • Calford MB, Aitkin LM (1983) Ascending projections to the medial geniculate body of the cat: evidence for multiple, parallel auditory pathways through the thalamus. J Neurosci 3: 2365–2380

    Google Scholar 

  • Calford MB, Webster WR (1981) Auditory representation within principal division of cat medial geniculate body: an electrophysiological study. J Neurophysiol 45: 1013–1028

    Google Scholar 

  • De Ribaupierre F (1984) Functional organization of the medial geniculate body in cats. In: Bolis L, Keynes RD, Maddrell SHP (eds) Comparative physiology of sensory systems. Cambridge University Press, Cambridge, pp 213–223

    Google Scholar 

  • De Ribaupierre F, Toros A (1976) Single unit properties related to the laminar structure of the MGN. Exp Brain Res Suppl I: 503–505

    Google Scholar 

  • Evans EF, Ross HF, Whitfield IC (1965) The spatial distribution of unit characteristic frequency in the primary auditory cortex of the cat. J Physiol 170: 238–247

    Google Scholar 

  • Goldstein MH Jr, Abeles M (1975) Note on tonotopic organization of primary auditory cortex in the cat. Brain Res 100: 188–191

    Google Scholar 

  • Goldstein MH Jr, Abeles M, Daily RL, MacIntosh J (1970) Functional architecture in cat primary auditory cortex: tonotopic organization. J Neurophysiol 33: 188–199

    Google Scholar 

  • Guinan JJ, Norris BE, Guinan SS (1972) Single auditory units in the superior olivary complex. II. Location of unit categories and tonotopic organization. Int J Neurosci 4: 147–166

    Google Scholar 

  • Imig TJ, Morel A (1983) Organization of the thalamo-cortical auditory system in the cat. Am Rev Neurosci 6: 95–120

    Google Scholar 

  • Imig TJ, Morel A (1984) Topographic and cytoarchitectonic organization of thalamic neurons related to their targets in low, middle and high frequency representations in cat auditory cortex. J Comp Neurol 227: 511–539

    Google Scholar 

  • Imig TJ, Morel A (1985a) Tonotopic organization in the ventral nucleus of the medial geniculate body in the cat. J Neurophysiol 53: 309–340

    Google Scholar 

  • Imig TJ, Morel A (1985b) Tonotopic organization in the lateral part of posterior group of thalamic nuclei in the cat. J Neurophysiol 53: 836–851

    Google Scholar 

  • Jones EG (1975) Some aspects of the organization of the thalamic reticular complex. J Comp Neurol 162: 285–308

    Google Scholar 

  • Kiang NYS (1965) Discharge patterns of single fibers in the cat's auditory nerve. MIT Press, Cambridge, Mass

    Google Scholar 

  • Knight PL (1977) Representation of the cochlea within the anterior auditory field. Brain Res 130: 447–468

    Google Scholar 

  • Kudo M, Niimi K (1980) Ascending projections of the inferior colliculus in the cat: an autoradiographic study. J Comp Neurol 191: 545–556

    Google Scholar 

  • Love JA, Scott JW (1969) Some response characteristics of cells of the magnocellular division of the medial geniculate body of the cat. Can J Physiol Pharmacol 47: 881–888

    Google Scholar 

  • Merzenich MM, Reid MD (1974) Representation of the cochlea within the inferior colliculus of the cat. Brain Res 77: 397–416

    Google Scholar 

  • Merzenich MM, Knight PL, Roth GL (1975) Representation of cochlea within primary auditory cortex in the cat. J Neurophysiol 38: 231–249

    Google Scholar 

  • Morel A (1980) Codage des sons dans le corps genouille median du chat: évaluation de l'organisation tonotopique de ses différents noyaux. PhD dissertation. Univ de Lausanne. Juris, Zurich

    Google Scholar 

  • Morel A, Imig TJ (1987) Thalamic projections to fields A, AI, P and VP in cat auditory cortex. J Comp Neurol (in press)

  • Morest DK (1964) The neuronal architecture of the medial geniculate body of the cat. J Anat 98: 611–630

    Google Scholar 

  • Morest DK (1965) The laminar structure of the medial geniculate body of the cat. J Anat 99: 143–160

    Google Scholar 

  • Niimi K, Matsuoka H (1979) Thalamo-cortical organization of the auditory system in the cat studied by retrograde axonal transport of horseradish peroxidase. Adv And Embryol Coll Biol 57: 1–56

    Google Scholar 

  • Nussbaumer JC, van der Loos H (1985) An electrophysiological and anatomical study of projections to the mouse cortical barrelfield and its surroundings. J Neurophysiol 53: 686–698

    Google Scholar 

  • Purser BD, Whitfield IC (1972) Thalamo-cortical connections and tonotopicity in the cat medial geniculate body. J Physiol 222: 161–162

    Google Scholar 

  • Reale RA, Imig TJ (1980) Tonotopic organization of auditory cortex in the cat. J Comp Neurol 192: 265–291

    Google Scholar 

  • Rose JE (1960) Organization of frequency sensitive neurons in the cochlear nucleus complex of the cat. In: Rasmussen GL, Windle WF (eds) Neuronal mechanisms in the auditory and vestibular systems. Charles C Thomas, Springfield, pp 116–131

    Google Scholar 

  • Rouiller E, de Ribaupierre Y (1979) Phase-locked responses to low frequency tones in the medial geniculate body. Hearing Res 1: 213–226

    Google Scholar 

  • Rouiller E, Colomb E, Capt M, de Ribaupierre F (1985) Projections of the reticular complex of the thalamus onto physiologically characterized regions of the medial geniculate body. Neurosci Lett 53: 227–232

    Google Scholar 

  • Rouiller E, de Ribaupierre F (1985) Origin of afferents to physiologically defined regions of the medial geniculate body of the cat: ventral and dorsal divisions. Hearing Res 19: 97–114

    Google Scholar 

  • Simons DJ, Woolsey TA (1979) Functional organization in mouse barrel cortex. Brain Res 165: 327–332

    Google Scholar 

  • Toros-Morel A, de Ribaupierre F, Rouiller E (1981) Coding properties of the different nuclei of the cat's medial geniculate body. In: Syka JF, Aitkin LM (eds) Neural mechanisms of hearing. Plenum, New York London, pp 239–243

    Google Scholar 

  • Toros A, Rouiller E, de Ribaupierre Y, Ivarsson C, Holden M, de Ribaupierre F (1979) Changes of functional properties of medial geniculate body neurons along the rostrocaudal axis. Neurosci Lett Suppl 3: S5

    Google Scholar 

  • Wepsic JG (1966) Multimodal sensory activation of cells in the magnocellular medial geniculate nucleus. Exp Neurol 15: 299–318

    Google Scholar 

  • Winer JA, Morest DK (1983) The medial division of the medial geniculate body of the cat: implication for thalamic organization. J Neurosci 3: 2629–2651

    Google Scholar 

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Morel, A., Rouiller, E., de Ribaupierre, Y. et al. Tonotopic organization in the medial geniculate body (MGB) of lightly anesthetized cats. Exp Brain Res 69, 24–42 (1987). https://doi.org/10.1007/BF00247026

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  • DOI: https://doi.org/10.1007/BF00247026

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