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Concurrent inactivation of calcium dependent phosphorylation and neurotransmitter release in cultured rat brain
1Department of Biochemistry, George S. Wise Faculty of Life Sciences, Tel Aviv University, Israel.
Abstract:
Depolarization of cultured rat brain neurons preloaded with 3H-dopamine provokes a transient (t 1/2 = 9.6 sec), Ca(2+)-dependent release of the labeled neurotransmitter from cells. In parallel, the amount of 32Pi incorporated into a protein of apparent molecular weight of 43,000 increased whereas the phosphorylation of a protein with an apparent molecular weight of 55,000 daltons decreased. The time course of the change in phosphorylation pattern was examined. The depolarization-induced phosphorylation of the 45,000 protein and dephosphorylation of the 55,000 dalton protein consisted of an initial, rapidly terminating phase (t 1/2 = 5 sec), and of a slow, Ca(2+)-independent phosphorylation of both proteins which persisted during maintained depolarization. The depolarization-evoked changes in the neuronal protein phosphorylation were dependent on the extracellular Ca2+ concentration (half saturation at 0.4-0.5 mM Ca2+). These data indicate that the entry of Ca2+ into the depolarized cells induces rapid phosphorylation-dephosphorylation activities. These processes terminate within 10 sec, concurrently with the depression of neurotransmitter release.