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A specific transduction mechanism for the glutamate action on phosphoinositide metabolism via the quisqualate metabotropic receptor in rat brain synaptoneurosomes: II. Calcium dependency, cadmium inhibition
- Source :
- Journal of Neurochemistry, Journal of Neurochemistry, Wiley, 1991, 57 (5), pp.1501-9. ⟨10.1111/j.1471-4159.1991.tb06344.x⟩
- Publication Year :
- 1991
-
Abstract
- International audience; In this article, we demonstrate that an increase in intracellular Ca2+ concentration may represent a specific common step(s) in the mechanism(s) of action of glutamate (Glu) and depolarizing agents on formation of inositol phosphates (IPs) in 8-day-old rat forebrain synaptoneurosomes. In fact, A23187, a Ca2+ ionophore, induces a dose-dependent accumulation of IPs, which is not additive with that evoked by Glu and K+ but is slightly synergistic with that induced by carbachol. In addition, Glu and K+ augment the intracellular Ca2+ concentration in synaptoneurosome preparations as measured by the fura-2 assay. The absence of external Ca2+ decreases basal and Glu-, and K(+)-stimulated formation of IPs. Cd2+ (100 microM) fully inhibits both Glu- and K(+)-evoked formation of IPs without affecting the carbachol-elicited response of IPs. Zn2+ inhibits Glu- and K(+)-stimulated accumulation of IPs (IC50 approximately 0.4 mM) but with a lower affinity than Cd2+ (IC50 approximately 0.035 mM). The organic Ca2+ channel blockers verapamil (10 microM), nifedipine (10 microM), omega-conotoxin (2 microM), and amiloride (10 microM) as well as the inorganic blockers Co2+ (100 microM) and La3+ (100 microM) block neither Glu- nor K(+)-evoked formation of IPs, a result suggesting that the opening of the L-, T-, N-, or P-type Ca2+ channels does not participate in these responses. All these data suggest that an increase in intracellular Ca2+ concentration resulting from an influx of Ca2+, sensitive to Cd2+ but not to other classical Ca2+ antagonists, may play a key role in the transduction mechanism activated by Glu or depolarizing agents.
- Subjects :
- MESH: Signal Transduction
MESH: Calcium Channel Blockers
Phosphatidylinositols
Biochemistry
MESH: Receptors, Neurotransmitter
Membrane Potentials
chemistry.chemical_compound
MESH: Prosencephalon
0302 clinical medicine
Glutamates
Inositol
MESH: Animals
Inositol phosphate
Calcimycin
chemistry.chemical_classification
0303 health sciences
Voltage-dependent calcium channel
Glutamate receptor
MESH: Glutamic Acid
Calcium Channel Blockers
Amiloride
Receptors, Neurotransmitter
MESH: Synaptosomes
MESH: Calcium
MESH: Receptors, AMPA
MESH: Calcium Channels
[SDV.NEU]Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]
medicine.drug
Cadmium
Signal Transduction
medicine.medical_specialty
MESH: Rats
Cations, Divalent
Inositol Phosphates
MESH: Cadmium
Glutamic Acid
AMPA receptor
Biology
03 medical and health sciences
Cellular and Molecular Neuroscience
MESH: Glutamates
Prosencephalon
Internal medicine
MESH: Cations, Divalent
medicine
MESH: Phosphatidylinositols
MESH: Membrane Potentials
Animals
Channel blocker
Receptors, AMPA
030304 developmental biology
MESH: Calcimycin
MESH: Quisqualic Acid
Quisqualic Acid
MESH: Inositol Phosphates
Rats
MESH: Carbachol
Endocrinology
Metabotropic receptor
chemistry
MESH: Potassium
Biophysics
Potassium
Calcium
Carbachol
Calcium Channels
030217 neurology & neurosurgery
Synaptosomes
Subjects
Details
- ISSN :
- 00223042 and 14714159
- Volume :
- 57
- Issue :
- 5
- Database :
- OpenAIRE
- Journal :
- Journal of neurochemistry
- Accession number :
- edsair.doi.dedup.....811bf27ebb087265a354fa8688cd45a0
- Full Text :
- https://doi.org/10.1111/j.1471-4159.1991.tb06344.x⟩