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Biochem J ; 298 ( Pt 1): 149-56, 1994 Feb 15.
Article in English | MEDLINE | ID: mdl-8129713

ABSTRACT

The role of protein kinase C in calcium-dependent exocytosis was investigated in permeabilized rat basophilic leukaemia cells. When protein kinase C was down-regulated by phorbol myristate acetate (1 microM for 3-6 h) or inhibited by pharmacological agents such as calphostin C (1 microM) or a protein kinase C-specific pseudo-substrate peptide inhibitor (100-200 microM), cells lost the ability to secrete in response to 10 microM free Ca2+. In contrast, a short treatment (15 min) with phorbol myristate acetate, which maximally activates protein kinase C, potentiated the effects of calcium. Biochemical analysis of protein kinase C-deprived cells indicated that loss of the Ca(2+)-induced secretory response correlated with disappearance of protein kinase C-alpha. In addition, at the concentrations effective for exocytosis, calcium caused translocation of protein kinase C-alpha to the membrane fraction and stimulated phospholipase C, suggesting that, in permeabilized cells, protein kinase C can be activated by calcium through generation of the phospholipase C metabolite diacylglycerol. The delta, epsilon and zeta Ca(2+)-independent protein kinase C isoenzymes were insensitive to phorbol myristate acetate-induced down-regulation and did not, as expected, translocate to the particulate fraction in response to calcium. Interestingly, secretory competence was restored in cells depleted of protein kinase C or in which protein kinase C itself was inhibited by non-hydrolysable GTP analogues, but not by GTP, suggesting that protein kinase C might regulate the ability of a G protein(s) directly controlling the exocytotic machinery to be activated by endogenous GTP.


Subject(s)
Exocytosis , GTP-Binding Proteins/metabolism , Protein Kinase C/metabolism , Amino Acid Sequence , Animals , Calcium/metabolism , Cell Membrane Permeability , Down-Regulation , Enzyme Activation , Guanosine 5'-O-(3-Thiotriphosphate)/pharmacology , Isoenzymes/metabolism , Molecular Sequence Data , Rats , Substrate Specificity , Tumor Cells, Cultured , Type C Phospholipases/metabolism
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