The long-term objective is to understand the molecular mechanisms that initiate and maintain the hypertrophic response of the myocardium. Of particular interest are the regulatory events that trigger the altered expression of gene networks associated with the hypertrophic response. To do this, an understanding of the events that govern cardiac gene expression is required. The main focus of this grant remains to understand the molecular mechanisms that regulate gene expression in the heart. A second focus is to determine if helix-loop-helix (HLH) proteins participate in the establishment of pathologically induced cardiac hypertrophy.
The specific aims are to: 1) Characterize the proximal alpha-MHC enhancer/promoter and identify cardiac-specific regulatory elements therein; 2) Isolate and characterize of a clone encoding alpha- MHC binding factor-2 (BF-2); and 3) Establish a link between mRNA levels of particular HLH proteins and cardiac-hypertrophy. Promoter fusion and site-directed mutagenesis experiments are proposed to identify elements regulating cardiac-specific expression. Activity will be assessed in primary neonatal cardiomyocytes, in the adult animal, in a cardiac cell line and in skeletal muscle cells. In vivo and in vitro techniques will be used to identify critical regulatory factors. DNA binding activity of these factors, and mRNA levels where possible, will be examined during development and establishment of hypertrophy. The DNA binding site for BF-2 will be used to isolate a clone encoding BF-2 from a neonatal rat heart cDNA expression library. The BF-2 clone will be characterized and used in functional studies to determine the effect of over and under expression of BF-2 on gene expression in the heart. Cardiac HLH clones will be used to determine the levels of several HLH mRNAs in the normal and hypertrophied adult heart. This information will be correlated with the presence of binding sites in genes which are regulated during cardiac-hypertrophy.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
5R01HL043662-08
Application #
2445193
Study Section
Cardiovascular and Pulmonary Research A Study Section (CVA)
Project Start
1990-07-01
Project End
1999-06-30
Budget Start
1997-07-22
Budget End
1999-06-30
Support Year
8
Fiscal Year
1997
Total Cost
Indirect Cost
Name
Parke Davis Pharmaceutical Research Div
Department
Type
DUNS #
City
Ann Arbor
State
MI
Country
United States
Zip Code
48105
Liang, Q; Wiese, R J; Bueno, O F et al. (2001) The transcription factor GATA4 is activated by extracellular signal-regulated kinase 1- and 2-mediated phosphorylation of serine 105 in cardiomyocytes. Mol Cell Biol 21:7460-9
Liang, Q; De Windt, L J; Witt, S A et al. (2001) The transcription factors GATA4 and GATA6 regulate cardiomyocyte hypertrophy in vitro and in vivo. J Biol Chem 276:30245-53
Lee, Y; Shioi, T; Kasahara, H et al. (1998) The cardiac tissue-restricted homeobox protein Csx/Nkx2.5 physically associates with the zinc finger protein GATA4 and cooperatively activates atrial natriuretic factor gene expression. Mol Cell Biol 18:3120-9
Hasegawa, K; Lee, S J; Jobe, S M et al. (1997) cis-Acting sequences that mediate induction of beta-myosin heavy chain gene expression during left ventricular hypertrophy due to aortic constriction. Circulation 96:3943-53
Herzig, T C; Jobe, S M; Aoki, H et al. (1997) Angiotensin II type1a receptor gene expression in the heart: AP-1 and GATA-4 participate in the response to pressure overload. Proc Natl Acad Sci U S A 94:7543-8
Molkentin, J D; Jobe, S M; Markham, B E (1996) Alpha-myosin heavy chain gene regulation: delineation and characterization of the cardiac muscle-specific enhancer and muscle-specific promoter. J Mol Cell Cardiol 28:1211-25
Molkentin, J D; Kalvakolanu, D V; Markham, B E (1994) Transcription factor GATA-4 regulates cardiac muscle-specific expression of the alpha-myosin heavy-chain gene. Mol Cell Biol 14:4947-57
Molkentin, J D; Markham, B E (1994) An M-CAT binding factor and an RSRF-related A-rich binding factor positively regulate expression of the alpha-cardiac myosin heavy-chain gene in vivo. Mol Cell Biol 14:5056-65
Molkentin, J D; Brogan, R S; Jobe, S M et al. (1993) Expression of the alpha-myosin heavy chain gene in the heart is regulated in part by an E-box-dependent mechanism. J Biol Chem 268:2602-9
Molkentin, J D; Markham, B E (1993) Myocyte-specific enhancer-binding factor (MEF-2) regulates alpha-cardiac myosin heavy chain gene expression in vitro and in vivo. J Biol Chem 268:19512-20