Understanding how cardiac myocytes transduce stretch signaling to alter nuclear transcriptional events will contribute greatly to our knowledge of the hierarchical mechanism which directs cardiac hypertrophy triggered by hypertension or structural heart disease. We propose the hypothesis that the effects of activated RhoA on the actin cytoskeleton and integrin activation might be the key mediator that links stretch dependent signaling to cardiac nuclear transcription factor performance, thus inducing cardiac hypertrophy in vivo. RhoA, a small molecular weight GTP-binding proteins acts a molecular switch that controls various cell functions and has received attention at a potential mediator of hypertrophic signals. The overall objective is to decipher the signaling pathways that link the potential receptors of the mechanical stretch signal to cytoskeleton assembly. and to the cardiac growth response.
Aim I : to determine if stretch induces cardiac hypertrophy via activation of the RhoA signaling pathway in isolated cardiac myocytes.
Aim II : to determine if focal adhesion kinase integrates the stretch signal through tyrosine auto-phosphorylation and/or by association with downstream signaling factors in isolate cardiac myocytes.
Aim III : to determine if stretch activates integrin-linked kinase and if expression of kinase deficient of kinase deficient integrin-linked kinase attenuates cardiac hypertrophy facilitated by pressure overload.
Aim I V: to determine the role of RhoA, focal adhesion kinase and integrin linked kinase and their mutated dominant negative species and whether they modify cardiac hypertrophic responses facilitated by pressure overload in inducible transgenic mouse models.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Specialized Center (P50)
Project #
2P50HL054313-06
Application #
6302325
Study Section
Project Start
2000-02-07
Project End
2001-01-31
Budget Start
Budget End
Support Year
6
Fiscal Year
2000
Total Cost
$184,963
Indirect Cost
Name
Baylor College of Medicine
Department
Type
DUNS #
074615394
City
Houston
State
TX
Country
United States
Zip Code
77030
Nassif, Michael E; LaRue, Shane J; Raymer, David S et al. (2016) Relationship Between Anticoagulation Intensity and Thrombotic or Bleeding Outcomes Among Outpatients With Continuous-Flow Left Ventricular Assist Devices. Circ Heart Fail 9:
Adamo, Luigi; Nassif, Michael; Tibrewala, Anjan et al. (2015) The Heartmate Risk Score predicts morbidity and mortality in unselected left ventricular assist device recipients and risk stratifies INTERMACS class 1 patients. JACC Heart Fail 3:283-90
Nassif, Michael E; Patel, Jayendrakumar S; Shuster, Jerrica E et al. (2015) Clinical outcomes with use of erythropoiesis stimulating agents in patients with the HeartMate II left ventricular assist device. JACC Heart Fail 3:146-53
Mann, Douglas L; Mochly-Rosen, Daria (2013) Translational medicine: mitigating risks for investigators. Nat Rev Drug Discov 12:327-8
Lombardi, Raffaella; Rodriguez, Gabriela; Chen, Suet Nee et al. (2009) Resolution of established cardiac hypertrophy and fibrosis and prevention of systolic dysfunction in a transgenic rabbit model of human cardiomyopathy through thiol-sensitive mechanisms. Circulation 119:1398-407
Lombardi, Raffaella; Bell, Achim; Senthil, Vinitha et al. (2008) Differential interactions of thin filament proteins in two cardiac troponin T mouse models of hypertrophic and dilated cardiomyopathies. Cardiovasc Res 79:109-17
Mann, Douglas L; Bozkurt, Biykem; Torre-Amione, Guillermo et al. (2008) Effect of the soluble TNF-antagonist etanercept on tumor necrosis factor bioactivity and stability. Clin Transl Sci 1:142-5
Daw, E W; Lu, Y; Marian, A J et al. (2008) Identifying modifier loci in existing genome scan data. Ann Hum Genet 72:670-5
Marian, Ali J (2008) Genetic determinants of cardiac hypertrophy. Curr Opin Cardiol 23:199-205
Daw, E Warwick; Chen, Suet Nee; Czernuszewicz, Grazyna et al. (2007) Genome-wide mapping of modifier chromosomal loci for human hypertrophic cardiomyopathy. Hum Mol Genet 16:2463-71

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