Home LiteratureArticle Details
PMID: 18234892 Published · ppublish English Comparative Study Journal Article Research Support, N.I.H., Extramural

Functions of interneurons in mouse cerebellum.

Barmack NH, Yakhnitsa V

Abstract

The output signal of Purkinje cells is conveyed by the modulated discharge of simple spikes (SSs) often ascribed to mossy fiber-granule cell-parallel fiber inputs to Purkinje cell dendrites. Although generally accepted, this view lacks experimental support. We can address this view by controlling afferent signals that reach the cerebellum over climbing and mossy fiber pathways. Vestibular primary afferents constitute the largest mossy fiber projection to the uvula-nodulus. The discharge of vestibular primary afferent mossy fibers increases during ipsilateral roll tilt. The discharge of SSs decreases during ipsilateral roll tilt. Climbing fiber discharge [complex spikes (CSs)] increases during ipsilateral roll tilt. These observations suggest that the modulation of SSs during vestibular stimulation cannot be attributed directly to vestibular mossy fiber afferents. Rather we suggest that interneurons driven by vestibular climbing fibers may determine SS modulation. We recorded from cerebellar interneurons (granule, unipolar brush, Golgi, stellate, basket, and Lugaro cells) and Purkinje cells in the uvula-nodulus of anesthetized mice during vestibular stimulation. We identified all neuronal types by juxtacellular labeling with neurobiotin. Granule, unipolar brush, stellate, and basket cells discharge in phase with ipsilateral roll tilt and in phase with CSs. Golgi cells discharge out of phase with ipsilateral roll tilt and out of phase with CSs. The phases of stellate and basket cell discharge suggests that their activity could account for the antiphasic behavior of CSs and SSs. Because Golgi cells discharge in phase with SSs, Golgi cell activity cannot account for SS modulation. The sagittal array of Golgi cell axon terminals suggests that they contribute to the organization of discrete parasagittal vestibular zones.

MeSH Terms
Action Potentials/physiology Animals Cerebellum/cytology,physiology Interneurons/cytology,physiology Mice Mice, Inbred C57BL Neural Inhibition/physiology
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Barmack Neal H
Neurological Sciences Institute, Oregon Health & Science University, Beaverton, Oregon 97006, USA. barmackn@ohsu.edu
Yakhnitsa Vadim
References (72)
72 references, click to expand
  1. Peripheral patterns of terminal innervation of vestibular primary afferent neurons projecting to the vestibulocerebellum in the gerbil.
    J Comp Neurol. 2001 Apr 23;433(1):48-61 PMID: 11283948
  2. Discharges of interpositus and Purkinje cells of the cat cerebellum during locomotion under different conditions.
    J Physiol. 1988 Jun;400:425-45 PMID: 3418533
  3. Between in and out: linking morphology and physiology of cerebellar cortical interneurons.
    Prog Brain Res. 2005;148:329-40 PMID: 15661201
  4. Early terminal degeneration of cerebellar climbing fibers after destruction of the inferior olive in the rat. Synaptic relationships in the molecular layer.
    Anat Embryol (Berl). 1976 Apr 21;149(1):87-112 PMID: 1267191
  5. The primary vestibulocerebellar projection in the rabbit: absence of primary afferents in the flocculus.
    Neurosci Lett. 1989 Oct 23;105(1-2):27-33 PMID: 2484730
  6. The length of cerebellar parallel fibers in chicken and rhesus monkey.
    J Comp Neurol. 1983 Oct 10;220(1):7-15 PMID: 6643718
  7. The inhibitory interneurones within the cerebellar cortex.
    Exp Brain Res. 1966;1(1):1-16 PMID: 5910941
  8. Partial segregation of posterior crista and saccular fibers to the nodulus and uvula of the cerebellum in mice, and its development.
    Brain Res Dev Brain Res. 2003 Feb 16;140(2):223-36 PMID: 12586428
  9. Properties of somatosensory synaptic integration in cerebellar granule cells in vivo.
    J Neurosci. 2006 Nov 8;26(45):11786-97 PMID: 17093099
  10. Quantitative studies on the mammalian cerebellum.
    Prog Neurobiol. 1991;36(6):437-63 PMID: 1947173
  11. Enhanced inhibitory synaptic transmission in the cerebellar molecular layer of the GluRdelta2 knock-out mouse.
    J Neurosci. 2004 Dec 1;24(48):10900-7 PMID: 15574740
  12. Role of cerebellar flocculus in adaptive interaction between optokinetic eye movement response and vestibulo-ocular reflex in pigmented rabbits.
    Exp Brain Res. 1989;77(3):541-51 PMID: 2806446
  13. Climbing fiber innervation of NG2-expressing glia in the mammalian cerebellum.
    Neuron. 2005 Jun 2;46(5):773-85 PMID: 15924863
  14. Purkinje cells in awake behaving animals operate at the upstate membrane potential.
    Nat Neurosci. 2006 Apr;9(4):459-61; author reply 461 PMID: 16568098
  15. Cerebellar Golgi cells in the rat: receptive fields and timing of responses to facial stimulation.
    Eur J Neurosci. 1999 Aug;11(8):2621-34 PMID: 10457161
  16. Observations on the secondary vestibulocerebellar projections in the macaque monkey.
    Exp Brain Res. 1985;58(1):62-74 PMID: 3987852
  17. Secondary vestibulocerebellar mossy fiber projection to the caudal vermis in the rabbit.
    J Comp Neurol. 1989 Dec 8;290(2):262-77 PMID: 2480371
  18. A novel single-cell staining procedure performed in vivo under electrophysiological control: morpho-functional features of juxtacellularly labeled thalamic cells and other central neurons with biocytin or Neurobiotin.
    J Neurosci Methods. 1996 Apr;65(2):113-36 PMID: 8740589
  19. Vertical Purkinje cells of the monkey floccular lobe: simple-spike activity during pursuit and passive whole body rotation.
    J Neurophysiol. 1999 Aug;82(2):787-803 PMID: 10444677
  20. Participation of Golgi neuron processes in the cerebellar glomeruli: an electron microscope study.
    Exp Brain Res. 1966;2(1):35-48 PMID: 5921132
  21. Different responses of rat cerebellar Purkinje cells and Golgi cells evoked by widespread convergent sensory inputs.
    J Physiol. 2006 Jul 15;574(Pt 2):491-507 PMID: 16709640
  22. Topographical representation in rabbit cerebellar flocculus for various afferent inputs from the brainstem investigated by means of retrograde axonal transport of horseradish peroxidase.
    Neurosci Lett. 1979 Apr;12(1):29-34 PMID: 460699
  23. Determinants of action potential propagation in cerebellar Purkinje cell axons.
    J Neurosci. 2005 Jan 12;25(2):464-72 PMID: 15647490
  24. Responses to head tilt in cat central vestibular neurons. I. Direction of maximum sensitivity.
    J Neurophysiol. 1984 Jan;51(1):136-46 PMID: 6319622
  25. Distribution of vestibular afferents that innervate the sacculus and posterior canal in the gerbil.
    J Comp Neurol. 1986 Dec 15;254(3):410-24 PMID: 3491843
  26. Simple spike modulation of Purkinje cells in the cerebellar nodulus of the pigmented rabbit to optokinetic stimulation.
    Neurosci Lett. 1991 Jul 8;128(1):101-4 PMID: 1922935
  27. Cerebellar afferent projections from the vestibular nuclei in the cat: an experimental study with the method of retrograde axonal transport of horseradish peroxidase.
    Exp Brain Res. 1978 Apr 14;31(4):591-604 PMID: 350598
  28. Cerebellar climbing fibers modulate simple spikes in Purkinje cells.
    J Neurosci. 2003 Aug 27;23(21):7904-16 PMID: 12944521
  29. Primary vestibulocerebellar fibers in the monkey: distribution of fibers arising from distinctive cell groups of the vestibular ganglia.
    Am J Anat. 1972 Oct;135(2):221-49 PMID: 4627955
  30. The brainstem projection of the vestibular nerve in the cat.
    J Comp Neurol. 1979 Mar 15;184(2):279-92 PMID: 762285
  31. Activity patterns of cerebellar cortical neurones and climbing fibre afferents in the awake cat.
    J Physiol. 1979 Apr;289:425-48 PMID: 458677
  32. Observations on the intracortical relations of the climbing fibers of the cerebellum; a Golgi study.
    J Comp Neurol. 1954 Dec;101(3):733-63 PMID: 13233358
  33. The changes in Purkinje cell simple spike activity following spontaneous climbing fiber inputs.
    Brain Res. 1982 Apr 15;237(2):484-91 PMID: 7083008
  34. The mossy fibre-granule cell relay of the cerebellum and its inhibitory control by Golgi cells.
    Exp Brain Res. 1966;1(1):82-101 PMID: 5910945
  35. Vestibular signals in the parasolitary nucleus.
    J Neurophysiol. 2000 Jun;83(6):3559-69 PMID: 10848571
  36. SITE AND MODE OF TERMINATION OF PRIMARY VESTIBULOCEREBELLAR FIBRES IN THE CAT. AN EXPERIMENTAL STUDY WITH SILVER IMPREGNATION METHODS.
    Arch Ital Biol. 1964 Jan 8;102:1-21 PMID: 14176955
  37. Action of climbing fibers in cerebellar cortex of the cat.
    J Neurophysiol. 1971 Jan;34(1):17-31 PMID: 5540578
  38. POSTSYNAPTIC INHIBITION OF CEREBELLAR PURKINJE CELLS.
    J Neurophysiol. 1964 Nov;27:1138-53 PMID: 14223975
  39. Vestibular and visual climbing fiber signals evoked in the uvula-nodulus of the rabbit cerebellum by natural stimulation.
    J Neurophysiol. 1995 Dec;74(6):2573-89 PMID: 8747215
  40. Vestibular primary afferent projection to the cerebellum of the rabbit.
    J Comp Neurol. 1993 Jan 22;327(4):521-34 PMID: 7680050
  41. The primate cerebellar cortex: a Golgi and electron microscopic study.
    Prog Brain Res. 1967;25:174-225 PMID: 4866553
  42. Role of climbing fiber afferent input in determining responsiveness of Purkinje cells to mossy fiber inputs.
    J Neurophysiol. 1981 May;45(5):962-71 PMID: 7241180
  43. Discharge of cerebellar neurons related to two maintained postures and two prompt movements. II. Purkinje cell output and input.
    J Neurophysiol. 1970 Jul;33(4):537-47 PMID: 4988215
  44. The unipolar brush cell: a neglected neuron of the mammalian cerebellar cortex.
    J Comp Neurol. 1994 Jan 8;339(2):174-80 PMID: 8300904
  45. Multiple climbing fibers signal to molecular layer interneurons exclusively via glutamate spillover.
    Nat Neurosci. 2007 Jun;10(6):735-42 PMID: 17515900
  46. Temporal firing patterns of Purkinje cells in the cerebellar ventral paraflocculus during ocular following responses in monkeys II. Complex spikes.
    J Neurophysiol. 1998 Aug;80(2):832-48 PMID: 9705472
  47. Afferents to the vestibulo-cerebellum and the origin of the visual climbing fibers in the rabbit.
    Brain Res. 1975 Nov 21;98(3):582-9 PMID: 1182539
  48. Neural basis for motor learning in the vestibuloocular reflex of primates. II. Changes in the responses of horizontal gaze velocity Purkinje cells in the cerebellar flocculus and ventral paraflocculus.
    J Neurophysiol. 1994 Aug;72(2):954-73 PMID: 7983548
  49. Antiphasic Purkinje cell responses in mouse uvula-nodulus are sensitive to static roll-tilt and topographically organized.
    Neuroscience. 2006 Dec 1;143(2):615-26 PMID: 16973298
  50. Long-lasting modulation of synaptic input to Purkinje neurons by Bergmann glia stimulation in rat brain slices.
    J Physiol. 2002 Dec 1;545(2):581-93 PMID: 12456836
  51. Developmental regulation of basket/stellate cell-->Purkinje cell synapses in the cerebellum.
    J Neurosci. 1997 Dec 1;17(23):9104-12 PMID: 9364057
  52. Central projections of the utricular nerve in the gerbil.
    J Comp Neurol. 2002 Oct 7;452(1):11-23 PMID: 12205706
  53. Unipolar brush cell: a potential feedforward excitatory interneuron of the cerebellum.
    Neuroscience. 2000;98(4):625-36 PMID: 10891606
  54. Morphology of parallel fibres in the cerebellar cortex of the rat: an experimental light and electron microscopic study with biocytin.
    J Comp Neurol. 1994 Apr 8;342(2):206-20 PMID: 8201032
  55. Topography and reciprocal activity of cerebellar Purkinje cells in the uvula-nodulus modulated by vestibular stimulation.
    J Neurophysiol. 1997 Dec;78(6):3083-94 PMID: 9405528
  56. Secondary vestibulocerebellar projections to the flocculus and uvulo-nodular lobule of the rabbit: a study using HRP and double fluorescent tracer techniques.
    Exp Brain Res. 1990;80(1):72-82 PMID: 2358039
  57. Lack of evidence of synaptic contacts by climbing fibre collaterals to basket and stellate cells in developing rat cerebellar cortex.
    Brain Res. 1980 Mar 31;186(2):454-7 PMID: 7357462
  58. Activity of neurons in the beta nucleus of the inferior olive of the rabbit evoked by natural vestibular stimulation.
    Exp Brain Res. 1993;94(2):203-15 PMID: 7689485
  59. Cerebellar signatures of vestibulo-ocular reflex motor learning.
    J Neurosci. 2003 Oct 29;23(30):9742-51 PMID: 14586001
  60. [The origin of secondary vestibulo-cerebellar fibers in cats; an experimental anatomical study].
    Arch Psychiatr Nervenkr Z Gesamte Neurol Psychiatr. 1957;195(6):550-67 PMID: 13435862
  61. Unipolar brush cells form a glutamatergic projection system within the mouse cerebellar cortex.
    J Comp Neurol. 2001 Jun 4;434(3):329-41 PMID: 11331532
  62. Projection patterns of single mossy fibers originating from the lateral reticular nucleus in the rat cerebellar cortex and nuclei.
    J Comp Neurol. 1999 Aug 16;411(1):97-118 PMID: 10404110
  63. Impaired motor coordination and Purkinje cell excitability in mice lacking calretinin.
    Proc Natl Acad Sci U S A. 1999 Apr 27;96(9):5257-62 PMID: 10220453
  64. Morphology of single olivocerebellar axons labeled with biotinylated dextran amine in the rat.
    J Comp Neurol. 1999 Nov 15;414(2):131-48 PMID: 10516588
  65. The length of parallel fibers in the cat cerebellar cortex. An experimental light and electron microscopic study.
    Exp Brain Res. 1976 Aug 27;26(1):39-58 PMID: 61126
  66. Distribution of primary vestibular fibers in the brainstem and cerebellum of the monkey.
    Brain Res. 1984 Mar 5;294(2):281-98 PMID: 6200186
  67. Properties of transmission at a giant glutamatergic synapse in cerebellum: the mossy fiber-unipolar brush cell synapse.
    J Neurophysiol. 1995 Jul;74(1):24-42 PMID: 7472327
  68. Receptive field plasticity profoundly alters the cutaneous parallel fiber synaptic input to cerebellar interneurons in vivo.
    J Neurosci. 2003 Oct 22;23(29):9620-31 PMID: 14573542
  69. Cerebellar unipolar brush cells are targets of primary vestibular afferents: an experimental study in the gerbil.
    Exp Brain Res. 2001 Sep;140(2):162-70 PMID: 11521148
  70. Excitatory and inhibitory processes acting upon individual Purkinje cells of the cerebellum in cats.
    J Physiol. 1956 Sep 27;133(3):520-47 PMID: 13368102
  71. Motor coding in floccular climbing fibers.
    J Neurophysiol. 2006 Apr;95(4):2342-51 PMID: 16354726
  72. Target-dependent use of co-released inhibitory transmitters at central synapses.
    J Neurosci. 2005 Jul 13;25(28):6490-8 PMID: 16014710
Article Info
Journal
The Journal of neuroscience : the official journal of the Society for Neuroscience
Abbr.
J Neurosci
ISSN
1529-2401
Published
2008-01-30
Pages
1140-52
Language
English
Region
United States
NLM ID
8102140
PMCID
PMC6671404
Subset
IM
Grants
NIDCD NIH HHS · R01 DC006668 · United States
NEI NIH HHS · R01 EY018561 · United States
NIDCD NIH HHS · DC006668 · United States
NEI NIH HHS · EY018561 · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com