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2001 | 60 | 1 |

Tytuł artykułu

Types of neurons of the claustrum in the rabbit - Nissl, Kluver-Barrera and Golgi studies

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
The studies were carried out on the claustrum of 8 adult rabbits. Four types of neurons were distinguished: 1. Multipolar neurons, which have dendritic trunks either with conus (multipolar polygonal perikarya) or without conus (multipolar rounded perikarya). Both subdivisions of the multipolar neurons have 3–6 dendritic trunks. Only some branches of these trunks have spines. An axon emerges mainly from the cell body, rarely from the initial part of the dendritic trunk. 2. Bipolar neurons with fusiform or rounded perikarya; they have two dendrites covered with spines. An axon originates directly from the cell body or from one of the dendritic trunks. 3. Triangular neurons, which have three dendritic branches with spines. An axon emerges directly from the soma, often near the primary dendritic trunk. 4. Pear-shaped neurons with one or two dendritic trunks arise from one pole of the cell body and with an axon that originates from the opposite side of the perikaryon. The dendrites are covered with spines.

Słowa kluczowe

EN

Wydawca

-

Czasopismo

Rocznik

Tom

60

Numer

1

Opis fizyczny

p.41-45,fig.

Twórcy

autor
  • University of Warmia and Mazury, Zolnierska 14, 10-561 Olsztyn, Poland
autor

Bibliografia

  • 1. Białowąs J, Chadzypanagiotis D (1972) Budowa przedmurza królika. Folia Morphol, 31: 73–81.
  • 2. Braak H, Braak E (1982) Neuronal types in the claustrum of man. Anat Embryol, 163: 447–460.
  • 3. Brand S (1981) A serial section Golgi analysis of the primate claustrum. Anat Embryol, 162: 475–488.
  • 4. Carey RG, Neal TL (1985) The rat claustrum: afferent and efferent connections with visual cortex. Brain Res, 329: 185–193.
  • 5. Chadzypanagiotis D, Narkiewicz O (1971) Connections of the visual cortex with the claustrum. Acta Neurobiol Exp, 31: 291–311.
  • 6. Dinopoulos A, Papadopoulos GC, Michaloudi H, Parnavelas JG, Uylings HBM, Karamanlidis AN (1992) Claustrum in the Hedgehog (Erinaceus europaeus) brain: Cytoarchitecture and connections with cortical and subcortical structures. J Comp Neurol, 316: 187–205.
  • 7. Druga R (1974) The claustrum and the Transitional Neopaleocortical Area of the Hedgehog (Erinaceus europaeus). Anat Anz, 135: 442–454.
  • 8. Druga R, Chen S, Bentivoglio M (1993) Parvalbumin and calbindin in the rat claustrum: an immunocytochemical study combined with retrograde tracing frontoparietal cortex. J Chem Neuroanat, 6: 399–406.
  • 9. Gómez-Urquijo SM, Gutiérrez-Ibarluzea I, Bueno-López JL (2000) Percentage incidence of α-aminobutyric acid neurons in the claustrum of the rabbit and comparison with the cortex and putamen. Neurosc Lett, 282: 177–180.
  • 10. Irvine DRF, Brugge JF (1980) Afferent and efferent connections between the claustrum and parietal association cortex in cat: a horseradish peroxidase and autoradiographic study. Neurosci Lett, 20: 5–10.
  • 11. Kowiański P, Moryś J, Dziewiątkowski J, Karwacki Z, Wiśniewski HM (2000) The combined retrograde transport and unbiased stereological study of the claustrocortical connections in the rabbit. Anat Anz, 182: 111–122.
  • 12. Kowiański P, Moryś J, Karwacki Z, Dziewiątkowski J, Narkiewicz O (1998) The cortico-related zones of the rabbit claustrum — study of the claustrocortical connections based on the retrograde axonal transport of fluorescent tracers. Brain Res, 784: 199–209.
  • 13. Kubasik-Juraniec J, Dziewiątkowski J, Moryś J, Narkiewicz O (1998) Ultrastructural organization of the visual zone in the claustrum of the cat. Folia Morphol, 57: 287–299.
  • 14. Kubasik-Juraniec J, Narkiewicz O, Moryś J (1994) Relationship of corticoclaustral axon terminals to neurons of the claustrum in the cat. Folia Morphol, 53: 69–76.
  • 15. Le Vay S, Sherk H (1981) The visual claustrum of the cat. I. Structure and connections. J Neurosci, 1: 956–980.
  • 16. Macchi G, Bentivoglio M, Minciacchi D, Molinari M (1983) Claustroneocortical projections studied in the cat by means of multiple retrograde fluorescent tracing. J Comp Neurol, 215: 121–134.
  • 17. Majak K, Kowiański P, Dziewiątkowski J, Karwacki Z, Łuczyńska A, Moryś J (2000) Claustrocingulate connections in the rabbit and rat — a stereological study. Folia Morphol, 59: 47–56.
  • 18. Majak K, Kowiański P, Moryś J, Spodnik J, Karwacki Z, Wiśniewski HM (2000) The limbic zone of the rabbit and rat claustrum: a study of the claustrocingulate connections based on the retrograde axonal transport of fluorescent tracers. Anat Embryol, 201: 15–25.
  • 19. Mamos L (1984) Morphology of claustral neurons in the rat. Folia Morphol, 43: 73–78.
  • 20. Mamos L, Narkiewicz O, Moryś J (1986) Neurons of the claustrum in the cat; a Golgi study. Acta Neurobiol Exp, 46: 171–178.
  • 21. Moryś J, Berdel B, Maciejewska B, Sadowski M, Sidorowicz M, Kowiańska J, Narkiewicz O (1996) Division of the human claustrum according to its architectonics and morphometric parameters. Folia Morphol, 55: 69–82.
  • 22. Narkiewicz O (1964) Degenerations in the claustrum after regional neocortical ablations in the cat. J Comp Neurol, 123: 335–336.
  • 23. Narkiewicz O, Nitecka L, Mamos L, Moryś J (1988) The pattern of the GABA-like immunoreactivity in the claustrum. Folia Morphol, 47: 21–30.
  • 24. Reynhout K, Baizer JS (1999) Immunoreactivity for calcium-binding proteins in the claustrum of the monkey. Anat Embryol (Berl), 199: 75–83.
  • 25. Równiak M, Szteyn S, Robak A, Klawon M (1994) The types of neurons in the claustrum of bison bonasus: Nissl and Golgi study. Folia Morphol, 53: 231–237.
  • 26. Sadowski M, Moryś J, Jakubowska-Sadowska K, Narkiewicz O (1997) Rat’s claustrum shows two main cortico-related zones. Brain Res, 756: 147–152.
  • 27. Squatrito S, Battaglini PP, Galletti C, Riva Sanseverino E (1980) Projections from the visual cortex to the contralateral claustrum of the cat revealed by an anterograde axonal transport method. Neurosc Lett, 19: 271–275.

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Bibliografia

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Identyfikator YADDA

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