Ca2+ is known to undergo transient alterations of intracellular concentration in nerve and other cells in response to diverse stimuli and to exert many of its actions by binding to a protein termed calmodulin (CaM). CaM, complexed with Ca2+, alters the activity of many cellular proteins including several protein kinases and a protein phosphatase which has been termed calcineurin (CN). Recently, this phosphatase has been implicated the regulation of exocytotic secretion in Paramecium tetraurelia. Our laboratory has produced several populations of monospecific, affinity-purified, domain-directed antibodies to the bovine brain CaM-dependent phosphatase. Two populations inhibit the enzyme by different mechanisms, while a third population produces a persistently activated, divalent cation independent phosphatase. In this application we propose to examine the effect of microinjecting these antibodies to the CaM-dependent phosphatase on Ca2+-induced exocytotic secretion and protein dephosphorylation in intact cultured adrenal chromaffin and PC-12 cells. Further, we plan to prepare adrenal chromaffin and PC-12 cells permeabilized with streptolysin O or digitonin. These cells are known to retain Ca2+-dependent exocytotic secretion of catecholamines while allowing the exchange of macromolecules with the """"""""cellular"""""""" interior. The effect of our antibody populations on catecholamine secretion and protein dephosphorylation will be examined in these systems. The endogenase substrates of the CaM-dependent phosphatase will be identified in bovine adrenal medulla and purified as thiophosphorylated analogs by affinity chromatography on the immobilized, homogeneous phosphatase. The CaM- dependent phosphatase has been shown to exist as resolvable charge isoforms. The isoforms will be resolved by preparative, native isoelectric focussing and the chemical basis for micro-heterogeneity established with particular attention to examining the hypothesis that the different isoforms reflect different degrees of enzyme phosphorylation. The phosphorylation of the phosphatase in intact PC-12 cells in vitro by purified protein kinases will be studied. Finally, one of our populations of antibodies has been found to immuno precipitate a phosphoprotein phosphatase from a preparation of the CaM binding proteins of the filamentous fungus Aspergillus nidulans. We propose to purify this phosphatase by immunoaffinity chromatography and to compare its physical, kinetic and chemical properties with the bovine brain homolog.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
5R01NS011252-18
Application #
3394440
Study Section
Neurological Sciences Subcommittee 1 (NLS)
Project Start
1977-03-01
Project End
1993-06-30
Budget Start
1991-07-01
Budget End
1993-06-30
Support Year
18
Fiscal Year
1991
Total Cost
Indirect Cost
Name
University of Medicine & Dentistry of NJ
Department
Type
Schools of Medicine
DUNS #
622146454
City
Piscataway
State
NJ
Country
United States
Zip Code
08854
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Wolff, D J; Datto, G A; Samatovicz, R A (1993) The dual mode of inhibition of calmodulin-dependent nitric-oxide synthase by antifungal imidazole agents. J Biol Chem 268:9430-6
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Wolff, D J; Datto, G A (1992) Identification and characterization of a calmodulin-dependent nitric oxide synthase from GH3 pituitary cells. Biochem J 285 ( Pt 1):201-6
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Bartelt, D C; Moroney, S; Wolff, D J (1987) Purification, characterization and substrate specificity of calmodulin-dependent myosin light-chain kinase from bovine brain. Biochem J 247:747-56
Farber, L H; Wilson, F J; Wolff, D J (1987) Calmodulin-dependent phosphatases of PC12, GH3, and C6 cells: physical, kinetic, and immunochemical properties. J Neurochem 49:404-14
Bartelt, D C; Wolff, D J; Scheele, G A (1986) Calmodulin-binding proteins and calmodulin-regulated enzymes in dog pancreas. Biochem J 240:753-63
Wolff, D J; Sved, D W (1985) The divalent cation dependence of bovine brain calmodulin-dependent phosphatase. J Biol Chem 260:4195-202