Despite enormous progress identifying the molecular basis for many of the ionic currents in the heart, a fully integrated understanding of the physiological basis for cardiac excitation is lacking. This gap in knowledge is underscored by the observation that two-thirds of all-cause cardiac mortality in the United States is due to sudden cardiac death. Our laboratory is interested in understanding the basis for normal cardiac rhythmicity and the pathological processes that result in arrhythmogenesis. We have been particularly interested in the role of gap junction channels in cardiac electrophysiology. During the previous funding period, we generated a number of genetically engineered murine models of altered gap junction channel expression in the heart. Our initial characterization of these mice resulted in several fundamental discoveries related to: the role of gap junctions channels in maintaining normal cardiac rhythmicity; the demonstration of a direct link between aberrant gap junction expression and arrhythmogenesis; and the demonstration of a relationship between aberrant gap junction expression and contractile dysfunction. However, our studies have raised as many questions as they have answered about the nature of cardiac impulse propagation and the function of gap junction channels in the heart. Accordingly, this renewal will build upon our previous work and further define the mechanisms through which gap junction channels and perhaps other coupling mechanisms in the heart contribute to normal cardiac physiology and pathophysiology. To achieve this overall goal, we will pursue the following specific aims: 1) To define the nature of impulse propagation in the murine heart; 2) To characterize the relationship between cell coupling and excitability in the murine heart; 3) To define the mechanisms by which cellular uncoupling in the myocardium forms a highly arrhythmogenic substrate. ? ?

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
5R01HL064757-07
Application #
6914212
Study Section
Electrical Signaling, Ion Transport, and Arrhythmias Study Section (ESTA)
Program Officer
Przywara, Dennis
Project Start
2000-08-01
Project End
2008-05-31
Budget Start
2005-06-01
Budget End
2006-05-31
Support Year
7
Fiscal Year
2005
Total Cost
$412,888
Indirect Cost
Name
New York University
Department
Internal Medicine/Medicine
Type
Schools of Medicine
DUNS #
121911077
City
New York
State
NY
Country
United States
Zip Code
10016
Huang, Tao; Shao, Qing; Barr, Kevin et al. (2014) Myogenic bladder defects in mouse models of human oculodentodigital dysplasia. Biochem J 457:441-9
Remo, Benjamin F; Qu, Jiaxiang; Volpicelli, Frank M et al. (2011) Phosphatase-resistant gap junctions inhibit pathological remodeling and prevent arrhythmias. Circ Res 108:1459-66
Park, David S; Fishman, Glenn I (2011) The cardiac conduction system. Circulation 123:904-15
Kang, Guoxin; Giovannone, Steven F; Liu, Nian et al. (2010) Purkinje cells from RyR2 mutant mice are highly arrhythmogenic but responsive to targeted therapy. Circ Res 107:512-9
Pallante, Benedetta A; Giovannone, Steven; Fang-Yu, Liu et al. (2010) Contactin-2 expression in the cardiac Purkinje fiber network. Circ Arrhythm Electrophysiol 3:186-94
Sotoodehnia, Nona; Isaacs, Aaron; de Bakker, Paul I W et al. (2010) Common variants in 22 loci are associated with QRS duration and cardiac ventricular conduction. Nat Genet 42:1068-76
Fishman, Glenn I; Chugh, Sumeet S; Dimarco, John P et al. (2010) Sudden cardiac death prediction and prevention: report from a National Heart, Lung, and Blood Institute and Heart Rhythm Society Workshop. Circulation 122:2335-48
Qu, Jiaxiang; Volpicelli, Frank M; Garcia, Luis I et al. (2009) Gap junction remodeling and spironolactone-dependent reverse remodeling in the hypertrophied heart. Circ Res 104:365-71
Danik, Stephan B; Rosner, Gregg; Lader, Joshua et al. (2008) Electrical remodeling contributes to complex tachyarrhythmias in connexin43-deficient mouse hearts. FASEB J 22:1204-12
Mori, Yoichiro; Fishman, Glenn I; Peskin, Charles S (2008) Ephaptic conduction in a cardiac strand model with 3D electrodiffusion. Proc Natl Acad Sci U S A 105:6463-8

Showing the most recent 10 out of 32 publications