Studies proposed in this project relate to; 1.) the role of rapidly turning over proteins in the regulation of adenylate cyclase by catecholamines and forskolin, and 2.) fluorescent microscopic localization of beta adrenergic receptors in the myocardium add cultured cells using video intensification microscopy and digital image processing. During the preceding grant period we have identified and characterized phenomena which suggest the presence of adenylate cyclase components or regulatory molecules which are rapidly turning over and involve RNA and protein synthesis. The first putative protein is involved in heterologous hormone refractoriness and is induced by the product of adenylate cyclase, cyclic AMP. The second rapidly turning over protein is necessary for the direct stimulatory actions of forskolin yet is not necessary for catecholamine mediated cyclic AMP accumulation or the potentiative actions of forskolin. In this proposal we propose to isolate, identify and ultimately study the regulation of these proteins using reconstitution assays into digitonin permeabilized cells, a system which maintains whole cell adenylate cyclase activity yet enables the addition or reconstitution of components into native cell membranes. Furthermore we will continue study the expression of mRNA for these cyclase components using Xenopus oocytes for the translation of mRNA isolated from cells undergoing active synthesis of these proteins. Hormone stimulated cyclic AMP accumulation and electrical or ion channel activity in oocytes or oocyte membranes will be used to identify the successful translation of the putative proteins and as an assay for the isolation or enrichment of their respective mRNA species. The second of this project involves the continued development of intensely fluorescent and 125I labeled beta-adrenergic receptor antagonists to accurately and specifically localize beta-adrenergic receptors in living cells. Our first successful derivative, NBD- 125I-iodopindolol maintains high specificity and affinity of binding to the beta receptor and has enabled its localization by high sensitivity video intensification fluorescence microscopy with digital image processing. This approach will be especially useful in studies of hormone refractoriness and receptor internalization in the myocardium and other cells. With this methodology we can evaluate our hypothesis that the dual and distinct actions of isoproterenol in the myocardium to relax and to stimulate the slow inward current is mediated by beta-receptors localized in two distinct regions of the cell.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
5R01HL028940-07
Application #
3340148
Study Section
Pharmacology A Study Section (PHRA)
Project Start
1981-09-01
Project End
1992-11-30
Budget Start
1988-12-01
Budget End
1989-11-30
Support Year
7
Fiscal Year
1989
Total Cost
Indirect Cost
Name
Georgetown University
Department
Type
Schools of Medicine
DUNS #
049515844
City
Washington
State
DC
Country
United States
Zip Code
20057
DeBernardi, Maria A; Brooker, Gary (2006) High-content kinetic calcium imaging in drug-sensitive and drug-resistant human breast cancer cells. Methods Enzymol 414:317-35
Bachis, A; Colangelo, A M; Vicini, S et al. (2001) Interleukin-10 prevents glutamate-mediated cerebellar granule cell death by blocking caspase-3-like activity. J Neurosci 21:3104-12
DeBernardi, M A; Brooker, G (1998) Simultaneous fluorescence ratio imaging of cyclic AMP and calcium kinetics in single living cells. Adv Second Messenger Phosphoprotein Res 32:195-213
Krishnan, S N; Haddad, G G (1995) Cloning of glucose transporter-3 (GLUT3) cDNA from rat brain. Life Sci 56:1193-7
O'Reilly, J P; Jiang, C; Haddad, G G (1995) Major differences in response to graded hypoxia between hypoglossal and neocortical neurons. Brain Res 683:179-86
de Erausquin, G; Brooker, G; Costa, E et al. (1994) Persistent AMPA receptor stimulation alters [Ca2+]i homeostasis in cultures of embryonic dopaminergic neurons. Brain Res Mol Brain Res 21:303-11
Mattie, M; Brooker, G; Spiegel, S (1994) Sphingosine-1-phosphate, a putative second messenger, mobilizes calcium from internal stores via an inositol trisphosphate-independent pathway. J Biol Chem 269:3181-8
Debernardi, M A; Munshi, R; Yoshimura, M et al. (1993) Predominant expression of type-VI adenylate cyclase in C6-2B rat glioma cells may account for inhibition of cyclic AMP accumulation by calcium. Biochem J 293 ( Pt 2):325-8
Debernardi, M A; Munshi, R; Brooker, G (1993) Ca2+ inhibition of beta-adrenergic receptor- and forskolin-stimulated cAMP accumulation in C6-2B rat glioma cells is independent of protein kinase C. Mol Pharmacol 43:451-8
Munshi, R; DeBernardi, M A; Brooker, G (1993) P2U-purinergic receptors on C6-2B rat glioma cells: modulation of cytosolic Ca2+ and cAMP levels by protein kinase C. Mol Pharmacol 44:1185-91

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