Recent studies from our laboratory identify previously unappreciated complexities in cardiac beta-adrenergic receptor subtype signaling, with profound developmental changes beta/2-receptor activation of effector mechanisms. At least two aspects of beta-receptor subtype signaling can not be explained in the context of traditional concepts of receptor- activated signaling pathways: [1] The observation that beta/2-receptors increase cAMP accumulation only in neonatal (not in adult) cardiomyocytes. [2] The observation that individual beta-receptor subtypes in neonatal cardiomyocytes display differential susceptibility to the inhibitory effects of muscarinic cholinergic agonists. In an attempt to understand the mechanisms that underlie these intriguing complexities in beta- receptor subtype signaling, studies in the renewal of this Project will apply newer concepts related to molecular heterogeneity of components of beta-receptor subtype signaling cascades (G protein subunits, adenylyl cyclase isoforms, and components of the PKA enzyme) as well as the concept that compartmentalization of second messenger molecules to caveolae (specialized membrane subdomains that serve as 'signaling processing center') serves to facilitate and/or restrict receptor signaling events. The first two Specific Aim will elucidate the molecular and/or cellular basis for differences in beta-adrenergic receptor subtype signaling in neonatal and adult ventricular myocytes. The third Specific Aim will build upon our exciting recent observation that beta/2-receptors influence contraction in adult ventricular myocytes via a cAMP-independent signaling pathway leading to HCO/3-dependent intracellular alkalinization to investigate pH/i-regulation by beta-receptor subtypes. The fourth Specific Aim will test the hypothesis that sympathetic innervation influence beta/2-receptor action. These studies will combine a broad range of biochemical/molecular techniques, fluorescence microscopy with ion- sensitive probes, and measurements of unloaded cell shortening; this permits an analysis of the functional role of intracellular signaling intermediates in beta-receptor subtype responsiveness. By considering novel signal transduction mechanisms that regulate cardiomyocyte autonomic responses in the context of normal growth, development, and/or sympathetic innervation of the ventricle, studies in this Project will contribute to the Program's long-range goal, which is to understand the structural, molecular, biochemical, and/or ionic determinants that lead to distinct catecholamine-dependent electrophysiologic and contractile responses in newborn and adult hearts.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Program Projects (P01)
Project #
5P01HL028958-20
Application #
6630018
Study Section
Project Start
2002-07-01
Project End
2003-06-30
Budget Start
Budget End
Support Year
20
Fiscal Year
2002
Total Cost
$90,462
Indirect Cost
Name
Columbia University (N.Y.)
Department
Type
DUNS #
167204994
City
New York
State
NY
Country
United States
Zip Code
10032
AlmaƧa, Joana; Liang, Tao; Gaisano, Herbert Y et al. (2015) Spatial and temporal coordination of insulin granule exocytosis in intact human pancreatic islets. Diabetologia 58:2810-8
Nawathe, Pooja A; Kryukova, Yelena; Oren, Ronit V et al. (2013) An LQTS6 MiRP1 mutation suppresses pacemaker current and is associated with sinus bradycardia. J Cardiovasc Electrophysiol 24:1021-7
Kryukova, Yelena N; Protas, Lev; Robinson, Richard B (2012) Ca2+-activated adenylyl cyclase 1 introduces Ca2+-dependence to beta-adrenergic stimulation of HCN2 current. J Mol Cell Cardiol 52:1233-9
Yan, Qinghong; Masson, Rajeev; Ren, Yi et al. (2012) Evolution of CpG island promoter function underlies changes in KChIP2 potassium channel subunit gene expression in mammalian heart. Proc Natl Acad Sci U S A 109:1601-6
Guo, Jianfen; Gertsberg, Zoya; Ozgen, Nazira et al. (2011) Protein kinase D isoforms are activated in an agonist-specific manner in cardiomyocytes. J Biol Chem 286:6500-9
Zhang, Hao; Lau, David H; Shlapakova, Iryna N et al. (2011) Implantation of sinoatrial node cells into canine right ventricle: biological pacing appears limited by the substrate. Cell Transplant 20:1907-14
Rosati, Barbara; Yan, Qinghong; Lee, Mi Sun et al. (2011) Robust L-type calcium current expression following heterozygous knockout of the Cav1.2 gene in adult mouse heart. J Physiol 589:3275-88
Kanaporis, G; Brink, P R; Valiunas, V (2011) Gap junction permeability: selectivity for anionic and cationic probes. Am J Physiol Cell Physiol 300:C600-9
Potapova, Irina A; Cohen, Ira S; Doronin, Sergey V (2010) Von willebrand factor increases endothelial cell adhesiveness for human mesenchymal stem cells by activating p38 mitogen-activated protein kinase. Stem Cell Res Ther 1:35
Wang, Wei; Gao, Junyuan; Entcheva, Emilia et al. (2010) A transmural gradient in the cardiac Na/K pump generates a transmural gradient in Na/Ca exchange. J Membr Biol 233:51-62

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