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Published in: Brain Structure and Function 2/2007

01-09-2007 | Original Article

Precerebellar and vestibular nuclei of the short-beaked echidna (Tachyglossus aculeatus)

Authors: K. W. S. Ashwell, G. Paxinos, C. R. R. Watson

Published in: Brain Structure and Function | Issue 2/2007

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Abstract

The monotremes are a unique group of living mammals, which diverged from the line leading to placental mammals at least 125 million years ago. We have examined the organization of pontine, inferior olivary, lateral reticular and vestibular nuclei in the brainstem of the short-beaked echidna (Tachyglossus aculeatus) to determine if the cyto- and chemoarchitecture of these nuclei are similar to that in placental mammals and marsupials. We have used Nissl staining in conjunction with enzyme-histochemistry for acetylcholinesterase, cytochrome oxidase and NADPH diaphorase as well as immunohistochemistry for non-phosphorylated neurofilament protein (SMI-32 antibody) and calcium binding proteins (parvalbumin, calbindin, calretinin). Homologies could be established between the arch shaped inferior olivary complex of the echidna and the principal, dorsal and medial accessory subdivisions of the therian inferior olivary complex. The pontine nuclei of the echidna included basilar and reticulotegmental components with similar cyto- and chemarchitectural features to therians and there were magnocellular and subtrigeminal components of the lateral reticular nucleus, also as seen in therians. Subdivisions and chemoarchitecture of the vestibular complex of the echidna were both similar to that region in rodents. In all three precerebellar nuclear groups studied and in the vestibular nucleus organization, the cyto- and chemoarchitecture of the echidna was very similar to that seen in therian mammals and no “primitive” or “reptilian” features were evident.
Footnotes
1
Copies of this report are available from the University of New South Wales Library.
 
Literature
go back to reference Abbie AA (1934) The brainstem and cerebellum of Echidna aculeata. Philos Trans R Soc Lond B Biol Sci 224:1–74CrossRef Abbie AA (1934) The brainstem and cerebellum of Echidna aculeata. Philos Trans R Soc Lond B Biol Sci 224:1–74CrossRef
go back to reference Ashwell KWS (2006b) Cyto- and chemoarchitecture of the monotreme olfactory tubercle. Brain Behav Evol 67:85–102PubMedCrossRef Ashwell KWS (2006b) Cyto- and chemoarchitecture of the monotreme olfactory tubercle. Brain Behav Evol 67:85–102PubMedCrossRef
go back to reference Ashwell KWS, Phillips JM (2006) The anterior olfactory nucleus and piriform cortex of the echidna and platypus. Brain Behav Evol 67:203–227PubMedCrossRef Ashwell KWS, Phillips JM (2006) The anterior olfactory nucleus and piriform cortex of the echidna and platypus. Brain Behav Evol 67:203–227PubMedCrossRef
go back to reference Ashwell KWS, Hardman CD, Paxinos G (2004) The claustrum is not missing from all monotreme brains. Brain Behav Evol 64:223–241PubMedCrossRef Ashwell KWS, Hardman CD, Paxinos G (2004) The claustrum is not missing from all monotreme brains. Brain Behav Evol 64:223–241PubMedCrossRef
go back to reference Baizer JS, Baker JF (2005) Immunoreactivity for calcium-binding proteins defines subregions of the vestibular complex of the cat. Exp Brain Res 164:78–91PubMedCrossRef Baizer JS, Baker JF (2005) Immunoreactivity for calcium-binding proteins defines subregions of the vestibular complex of the cat. Exp Brain Res 164:78–91PubMedCrossRef
go back to reference Bangma GC, Ten Donkelaar HJ (1982) Afferent projections of the cerebellum in various types of reptiles. J Comp Neurol 207:255–273PubMedCrossRef Bangma GC, Ten Donkelaar HJ (1982) Afferent projections of the cerebellum in various types of reptiles. J Comp Neurol 207:255–273PubMedCrossRef
go back to reference Bäurle J, Vogten H, Grüsser-Cornehls U (1998) Course and targets of the calbindin D-28k subpopulation of primary vestibular afferents. J Comp Neurol 402:111–128PubMedCrossRef Bäurle J, Vogten H, Grüsser-Cornehls U (1998) Course and targets of the calbindin D-28k subpopulation of primary vestibular afferents. J Comp Neurol 402:111–128PubMedCrossRef
go back to reference Bourrat F, Sotelo C (1991) Relationships between neuronal birthdates and cytoarchitecture in the rat inferior olivary complex. J Comp Neurol 313:509–521PubMedCrossRef Bourrat F, Sotelo C (1991) Relationships between neuronal birthdates and cytoarchitecture in the rat inferior olivary complex. J Comp Neurol 313:509–521PubMedCrossRef
go back to reference Celio MR (1990) Calbindin D-28k and parvalbumin in the rat nervous system. Neuroscience 35:375–475PubMedCrossRef Celio MR (1990) Calbindin D-28k and parvalbumin in the rat nervous system. Neuroscience 35:375–475PubMedCrossRef
go back to reference De Leon M, Covenas R, Narvaez JA, Aguirre JA, Gonzalez-Baron S (1994) Distribution of calbindin D-28k-immunoreactivity in the cat brainstem. Arch Ital Biol 132:229–241PubMed De Leon M, Covenas R, Narvaez JA, Aguirre JA, Gonzalez-Baron S (1994) Distribution of calbindin D-28k-immunoreactivity in the cat brainstem. Arch Ital Biol 132:229–241PubMed
go back to reference Foster RE, Peterson BE (1986) The inferior olivary complex of guinea pig: cytoarchitecture and cellular morphology. Brain Res Bull 17:785–800PubMedCrossRef Foster RE, Peterson BE (1986) The inferior olivary complex of guinea pig: cytoarchitecture and cellular morphology. Brain Res Bull 17:785–800PubMedCrossRef
go back to reference Gerrits NM, Voogd J (1986) The nucleus reticularis tegmenti pontis and the adjacent rostral paramedian reticular formation: differential projections to the cerebellum and the caudal brain stem. Exp Brain Res 62:29–45PubMedCrossRef Gerrits NM, Voogd J (1986) The nucleus reticularis tegmenti pontis and the adjacent rostral paramedian reticular formation: differential projections to the cerebellum and the caudal brain stem. Exp Brain Res 62:29–45PubMedCrossRef
go back to reference Gregory JE, Iggo A, McIntyre AK, Proske U (1987) Electroreceptors in the platypus. Nature 326:386–387PubMedCrossRef Gregory JE, Iggo A, McIntyre AK, Proske U (1987) Electroreceptors in the platypus. Nature 326:386–387PubMedCrossRef
go back to reference Gregory JE, Iggo A, McIntyre AK, Proske U (1988) Receptors in the bill of the platypus. J Physiol 400:349–366PubMed Gregory JE, Iggo A, McIntyre AK, Proske U (1988) Receptors in the bill of the platypus. J Physiol 400:349–366PubMed
go back to reference Griffiths M (1978) The biology of the monotremes. Academic, New York Griffiths M (1978) The biology of the monotremes. Academic, New York
go back to reference Grover BG, Grüsser-Cornehls U (1984) Cerebellar afferents in the frogs, Rana esculenta and Rana temporaria. Cell Tissue Res 237:237–259CrossRef Grover BG, Grüsser-Cornehls U (1984) Cerebellar afferents in the frogs, Rana esculenta and Rana temporaria. Cell Tissue Res 237:237–259CrossRef
go back to reference Halasz P, Martin P (1995) Magellan: program for the quantitative analysis of histological sections. University of New South Wales Press, Sydney Halasz P, Martin P (1995) Magellan: program for the quantitative analysis of histological sections. University of New South Wales Press, Sydney
go back to reference Hanker JS, Yates PE, metz CB, Rustioni A (1977) A new specific, sensitive and non-carcinogenic reagent for the demonstration of horseradish peroxidase. Histochem J 9:789–792PubMedCrossRef Hanker JS, Yates PE, metz CB, Rustioni A (1977) A new specific, sensitive and non-carcinogenic reagent for the demonstration of horseradish peroxidase. Histochem J 9:789–792PubMedCrossRef
go back to reference Hassiotis M, Paxinos G, Ashwell KWS (2004) Cyto- and chemoarchitecture of the cerebral cortex of the Australian echidna (Tachyglossus aculeatus). I. Areal organization. J Comp Neurol 475:495–517CrossRef Hassiotis M, Paxinos G, Ashwell KWS (2004) Cyto- and chemoarchitecture of the cerebral cortex of the Australian echidna (Tachyglossus aculeatus). I. Areal organization. J Comp Neurol 475:495–517CrossRef
go back to reference Hassiotis M, Paxinos G, Ashwell KWS (2005) Cyto- and chemoarchitecture of the cerebral cortex of the Australian echidna (Tachyglossus aculeatus). II. Laminar organization and synaptic density. J Comp Neurol 482:94–122PubMedCrossRef Hassiotis M, Paxinos G, Ashwell KWS (2005) Cyto- and chemoarchitecture of the cerebral cortex of the Australian echidna (Tachyglossus aculeatus). II. Laminar organization and synaptic density. J Comp Neurol 482:94–122PubMedCrossRef
go back to reference Hines M (1929) The brain of Ornithorhynchus anatinus. Philos Trans R Soc B Biol Sci 217:155–288CrossRef Hines M (1929) The brain of Ornithorhynchus anatinus. Philos Trans R Soc B Biol Sci 217:155–288CrossRef
go back to reference Holst MC (1986) The olivocerebellar projection in a marsupial and a monotreme. PhD Thesis, The University of New South Wales Holst MC (1986) The olivocerebellar projection in a marsupial and a monotreme. PhD Thesis, The University of New South Wales
go back to reference Kapogianis EM, Flumerfelt BA, Hrycyshyn AW (1982a) Cytoarchitecture and cytology of the lateral reticular nucleus in the rat. Anat Embryol 164:229–242PubMedCrossRef Kapogianis EM, Flumerfelt BA, Hrycyshyn AW (1982a) Cytoarchitecture and cytology of the lateral reticular nucleus in the rat. Anat Embryol 164:229–242PubMedCrossRef
go back to reference Kapogianis EM, Flumerfelt BA, Hrycyshyn AW (1982b) A Golgi study of the lateral reticular nucleus in the rat. Anat Embryol 164:243–256PubMedCrossRef Kapogianis EM, Flumerfelt BA, Hrycyshyn AW (1982b) A Golgi study of the lateral reticular nucleus in the rat. Anat Embryol 164:243–256PubMedCrossRef
go back to reference Kevetter GA (1996) Pattern of selected calcium-binding proteins in the vestibular nuclear complex of two rodent species. J Comp Neurol 365:575–584PubMedCrossRef Kevetter GA (1996) Pattern of selected calcium-binding proteins in the vestibular nuclear complex of two rodent species. J Comp Neurol 365:575–584PubMedCrossRef
go back to reference Kevetter GA, Leonard RB (1997) Use of calcium-binding proteins to map inputs in vestibular nuclei of the gerbil. J Comp Neurol 386:317–327PubMedCrossRef Kevetter GA, Leonard RB (1997) Use of calcium-binding proteins to map inputs in vestibular nuclei of the gerbil. J Comp Neurol 386:317–327PubMedCrossRef
go back to reference Kooy FH (1917) The inferior olive in vertebrates. Folia Neurobiol 10:205–369 Kooy FH (1917) The inferior olive in vertebrates. Folia Neurobiol 10:205–369
go back to reference Künzle H (1983) Supraspinal cell populations projecting to the cerebellar cortex in the turtle (Pseudemys scripta elegans). Exp Brain Res 49:1–12PubMedCrossRef Künzle H (1983) Supraspinal cell populations projecting to the cerebellar cortex in the turtle (Pseudemys scripta elegans). Exp Brain Res 49:1–12PubMedCrossRef
go back to reference Künzle H, Wiklund L (1982) Identification and distribution of neurons presumed to give rise to cerebellar climbing fibres in the turtle: a retrograde axonal flow study using radioactive d-aspartate as a marker. Brain Res 252:146–150PubMedCrossRef Künzle H, Wiklund L (1982) Identification and distribution of neurons presumed to give rise to cerebellar climbing fibres in the turtle: a retrograde axonal flow study using radioactive d-aspartate as a marker. Brain Res 252:146–150PubMedCrossRef
go back to reference Larsell O (1970) The comparative anatomy and histology of the cerebellum from monotremes through apes. In: Jansen J (ed) University of Minnesota Press, Minneapolis Larsell O (1970) The comparative anatomy and histology of the cerebellum from monotremes through apes. In: Jansen J (ed) University of Minnesota Press, Minneapolis
go back to reference Manger PR, Fahringer HM, Pettigrew JD, Siegel JM (2002) The distribution and morphological characteristics of catecholaminergic cells in the brain of monotremes as revealed by tyrosine hydroxylase immunohistochemistry. Brain Behav Evol 60:298–314PubMedCrossRef Manger PR, Fahringer HM, Pettigrew JD, Siegel JM (2002) The distribution and morphological characteristics of catecholaminergic cells in the brain of monotremes as revealed by tyrosine hydroxylase immunohistochemistry. Brain Behav Evol 60:298–314PubMedCrossRef
go back to reference Marani E, Voogd J, Boekee A (1977) Acetylcholinesterase staining in subdivisions of the cat’s inferior olive. J Comp Neurol 174:209–226PubMedCrossRef Marani E, Voogd J, Boekee A (1977) Acetylcholinesterase staining in subdivisions of the cat’s inferior olive. J Comp Neurol 174:209–226PubMedCrossRef
go back to reference Mesulam MM (1978) Tetramethyl benzidine for horseradish peroxidase neurohistochemistry: a non-carcinogenic blue reaction product with superior sensitivity for visualizing neural afferents and efferents. J Histochem Cytochem 26:106–117PubMed Mesulam MM (1978) Tetramethyl benzidine for horseradish peroxidase neurohistochemistry: a non-carcinogenic blue reaction product with superior sensitivity for visualizing neural afferents and efferents. J Histochem Cytochem 26:106–117PubMed
go back to reference Mihailoff GA, McArdle CB, Adams CE (1981) The cytoarchitecture, cytology and synaptic organization of the basilar pontine nuclei in the rat. I. Nissl and Golgi studies. J Comp Neurol 195:181–201PubMedCrossRef Mihailoff GA, McArdle CB, Adams CE (1981) The cytoarchitecture, cytology and synaptic organization of the basilar pontine nuclei in the rat. I. Nissl and Golgi studies. J Comp Neurol 195:181–201PubMedCrossRef
go back to reference Musser AM (2003) Review of the monotreme fossil record and comparison of paleontological and molecular data. Comp Biochem Physiol A Mol Integr Physiol 136:927–942PubMedCrossRef Musser AM (2003) Review of the monotreme fossil record and comparison of paleontological and molecular data. Comp Biochem Physiol A Mol Integr Physiol 136:927–942PubMedCrossRef
go back to reference Nag TC, Wadhwa S (2004) Ontogeny of two calcium-binding proteins (calbindin D-28k and parvalbumin) in the human inferior olivary complex and their distribution in the adults. J Chem Neuroanat 27:183–192PubMedCrossRef Nag TC, Wadhwa S (2004) Ontogeny of two calcium-binding proteins (calbindin D-28k and parvalbumin) in the human inferior olivary complex and their distribution in the adults. J Chem Neuroanat 27:183–192PubMedCrossRef
go back to reference Paxinos G, Carrive P, Wang H-Q, Wang P-Y (1999) Chemoarchitectonic atlas of the rat brainstem. Academic, San Diego Paxinos G, Carrive P, Wang H-Q, Wang P-Y (1999) Chemoarchitectonic atlas of the rat brainstem. Academic, San Diego
go back to reference Scheich H, Langner G, Tidemann C, Coles RB, Guppy A (1986) Electroreception and electrolocation in platypus. Nature 319:401–402PubMedCrossRef Scheich H, Langner G, Tidemann C, Coles RB, Guppy A (1986) Electroreception and electrolocation in platypus. Nature 319:401–402PubMedCrossRef
go back to reference Schwaller B, Buchwald P, Blumcke I, Celio MR, Hunziker W (1993) Characterization of a polyclonal antiserum against the purified human recombinant calcium binding protein calretinin. Cell Calcium 14:639–648PubMedCrossRef Schwaller B, Buchwald P, Blumcke I, Celio MR, Hunziker W (1993) Characterization of a polyclonal antiserum against the purified human recombinant calcium binding protein calretinin. Cell Calcium 14:639–648PubMedCrossRef
go back to reference Schwarz C, Thier P (1996) Comparison of projection neurons in the pontine nuclei and the nucleus reticularis tegmenti pontis of the rat. J Comp Neurol 376:403–419PubMedCrossRef Schwarz C, Thier P (1996) Comparison of projection neurons in the pontine nuclei and the nucleus reticularis tegmenti pontis of the rat. J Comp Neurol 376:403–419PubMedCrossRef
go back to reference Torigoe Y, Blanks RHI, Precht W (1986) Anatomical studies on the nucleus reticularis tegmenti pontis in the pigmented rat. I. Cytoarchitecture, topography, and cerebral cortical afferents. J Comp Neurol 243:71–87PubMedCrossRef Torigoe Y, Blanks RHI, Precht W (1986) Anatomical studies on the nucleus reticularis tegmenti pontis in the pigmented rat. I. Cytoarchitecture, topography, and cerebral cortical afferents. J Comp Neurol 243:71–87PubMedCrossRef
Metadata
Title
Precerebellar and vestibular nuclei of the short-beaked echidna (Tachyglossus aculeatus)
Authors
K. W. S. Ashwell
G. Paxinos
C. R. R. Watson
Publication date
01-09-2007
Publisher
Springer-Verlag
Published in
Brain Structure and Function / Issue 2/2007
Print ISSN: 1863-2653
Electronic ISSN: 1863-2661
DOI
https://doi.org/10.1007/s00429-007-0139-z

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