Dendro-somatic distribution of calcium-mediated electrogenesis in Purkinjecells from rat cerebellar slice cultures

Citation
F. Pouille et al., Dendro-somatic distribution of calcium-mediated electrogenesis in Purkinjecells from rat cerebellar slice cultures, J PHYSL LON, 527(2), 2000, pp. 265-282
Citations number
51
Categorie Soggetti
Physiology
Journal title
JOURNAL OF PHYSIOLOGY-LONDON
ISSN journal
00223751 → ACNP
Volume
527
Issue
2
Year of publication
2000
Pages
265 - 282
Database
ISI
SICI code
0022-3751(20000901)527:2<265:DDOCEI>2.0.ZU;2-8
Abstract
1. The role of Ca2+ Entry in determining thf electrical properties of cereb ellar Purkinje cell (PC) dendrites: and somata was investigated in cerebell ar slice cultures. Immunohistofluorescence demonstrated the presence of at least three distinct types of Ca2+ channel proteins in PCs: the alpha(1A) s ubunit (P/Q type Ca2+ channel), the alpha(1G) subunit (T type) and the alph a(1E) subunit (R type) 2. In PC dendrites, the response started in 66% of cases with a slow depola rization (50 +/- 15 ms) triggering one or two fast (similar to 1 ms) action potentials (APs). The slow depolarization was identified as a low-threshol d non-P/Q Ca2+ AT initiated, most probably: in thc dendrites. In 16% of cas es, this response propagated to the soma to elicit an initial burst of fast APs. 3. Somatic recordings revealed three modes of discharge. In mode 1, PCs dis play a single or a short burst of fast APs. In contrast, PCs fire repetitiv ely in mode 2 and 3, with a sustained discharge of As in mode 2, and bursts of APs in mode 3. Removal of external Ca2+ or bath applications of a membr ane-permeable Ca2+ chelator abolished repetitive firing. 4. Tetraethylammonium (TEA) prolonged dendritic and somatic fast APs by a d epolarizing plateau sensitive to Cd2+ and to omega-conotoxin MVII C or omeg a-agatoxin TK. Therefore, the role of Ca2+ channels in determining somatic PC firing has been investigated. Cd2+ or P/Q type Ca2+ channel-specific tox ins reduced the duration of the discharge and occasionally induced the appe arance of oscillations in the membrane potential associated with bursts of APs. 5. In summary we demonstrate that Ca2+ entry through low-voltage gated Ca2 channels, not yet identified, underlies a dendritic AP rarely eliciting a somatic burst of APs whereas Ca2+ entry through P/Q type Ca2+ channels allo wed a repetitive firing mainly by inducing a Ca2+-dependent hyperpolarizati on.