» Articles » PMID: 7441553

Electrophysiological Properties of in Vitro Purkinje Cell Dendrites in Mammalian Cerebellar Slices

Overview
Journal J Physiol
Specialty Physiology
Date 1980 Aug 1
PMID 7441553
Citations 354
Authors
Affiliations
Soon will be listed here.
Abstract

1. Intradendritic recordings from Purkinje cells in vitro indicate that white matter stimulation produces large synaptic responses by the activation of the climbing fibre afferent, but antidromic potentials do not actively invade the dendritic tree. 2. Climbing fibre responses may be reversed in a manner similar to that observed at the somatic level. However, the reversal does not show the biphasicity often seen at somatic level. 3. Input resistance of these dendrites was found to range from 15 to 30 M omega. The non-linear properties seen at the somatic level for depolarizing currents are also encountered here. However, there seems to be less anomalous rectification. 4. Detailed analysis of repetitive firing of Purkinje cells elicited by outward DC current shows that, as in the case of the antidromic invasion, the fast somatic potentials (s.s.) do not invade the dendrite actively. However, the dendritic spike bursts (d.s.b.s) interposed between the s.s. potentials are most prominent at dendritic level. 5. Two types of voltage-dependent Ca responses were observed. At low stimulus level a plateau-like depolarization is accompanied by a prominent conductance change; further depolarization produces large dendritic action potentials. These two classes of response are TTX-resistant but are blocked by Cd, Co, Mn or D600, or by the removal of extracellular Ca. 6. Following blockage of the Ca conductance, plateau potentials produced by a non-inactivating Na conductance are observed mainly near the soma indicating that this voltage-dependent conductance is probably associated with the somatic membrane. 7. Spontaneous firing in Purkinje cell dendrites is very similar to that observed at the soma. However, the amplitude of these bursts is larger at dendritic level. It is further concluded that these TTX-insensitive spikes are generated at multiple sites along the dendritic tree. 8. Six ionic conductances seem to be involved in Purkinje cell electroresponsiveness: (a) an inactivating and (b) a non-inactivating Na conductance at or near the soma, (c) a spike- and (d) a plateau-generating Ca conductance, and (e) voltage-dependent and (f) Ca-dependent K currents. 9. The possible role of these conductances in Purkinje cell integration is discussed.

Citing Articles

Functional Characterization of Parallel Fiber-Purkinje Cell Synapses in Two Friedreich's Ataxia Mouse Models.

Joseph D, Mercado-Ayon E, Flatley L, Viaene A, Hordeaux J, Marsh E Cerebellum. 2025; 24(2):42.

PMID: 39907933 PMC: 11799031. DOI: 10.1007/s12311-025-01796-0.


Branch-specific clustered parallel fiber input controls dendritic computation in Purkinje cells.

Cirtala G, De Schutter E iScience. 2024; 27(9):110756.

PMID: 39286509 PMC: 11404202. DOI: 10.1016/j.isci.2024.110756.


Purkinje cell models: past, present and future.

Fernandez Santoro E, Karim A, Warnaar P, De Zeeuw C, Badura A, Negrello M Front Comput Neurosci. 2024; 18:1426653.

PMID: 39049990 PMC: 11266113. DOI: 10.3389/fncom.2024.1426653.


Modeling demyelination and endogenous remyelination in spinal cord rat organotypic slice cultures.

Hawker B, Dhakal M, Connor B, McCaughey-Chapman A Front Cell Neurosci. 2024; 18:1345042.

PMID: 38988661 PMC: 11233765. DOI: 10.3389/fncel.2024.1345042.


Simple spike patterns and synaptic mechanisms encoding sensory and motor signals in Purkinje cells and the cerebellar nuclei.

Brown S, Medina-Pizarro M, Holla M, Vaaga C, Raman I Neuron. 2024; 112(11):1848-1861.e4.

PMID: 38492575 PMC: 11156563. DOI: 10.1016/j.neuron.2024.02.014.


References
1.
Wong R, Prince D, Basbaum A . Intradendritic recordings from hippocampal neurons. Proc Natl Acad Sci U S A. 1979; 76(2):986-90. PMC: 383115. DOI: 10.1073/pnas.76.2.986. View

2.
Hagiwara S . Ca spike. Adv Biophys. 1973; 4:71-102. View

3.
Ito M, SIMPSON J . Discharges in Purkinje cell axons during climbing fiber activation. Brain Res. 1971; 31(1):215-9. DOI: 10.1016/0006-8993(71)90648-2. View

4.
Schwartzkroin P, Slawsky M . Probable calcium spikes in hippocampal neurons. Brain Res. 1977; 135(1):157-61. DOI: 10.1016/0006-8993(77)91060-5. View

5.
Nicholson C, Ten Bruggencate G, Stockle H, Steinberg R . Calcium and potassium changes in extracellular microenvironment of cat cerebellar cortex. J Neurophysiol. 1978; 41(4):1026-39. DOI: 10.1152/jn.1978.41.4.1026. View