The vasodilator and antihypertensive effects of the heptapeptide angiotensin-(1-7) [Ang-(1-7)] promoted a more intense investigation of the biochemical physiology of the renin angiotensin system (RAS) and was a stimulus in the recent discovery of an angiotensin converting enzyme (ACE) homolog (ACE2) which acting as a carboxypeptidase, converts angiotensin II (Ang II) into Ang-(1-7), is insensitive to ACE inhibitors, is linked to the expression of several genetics models of hypertension and regulates cardiac function. The primary objective of this proposal will be to show that ACE2 expression and activity plays a critical role in determining the opposing actions of Ang-(1-7) on Ang II in terms of ventrieular contractility and the development of hypertension-related cardiac hypertrophy. These studies will be performed in normotensive Lewis and mRen2.Lewis hypertensive rats. To accomplish these objectives we will: 1)- determine the expression and tissue localization of Ang-(1-7) and ACE2 in the hearts of onrmotensive Lewis and mRen2.Lewis hypertensive rats alone and in relation to the supporting collagen matrix and angiotensin receptors (Specific Aim 1); 2)- characterize the role of cardiac ACE2 and other Ang-(1-7) forming enzymes in contributing to the formation of Ang-(1-7) in the heart versus the systemic circulation (Specific Aim 2); 3) assess the effects of chemical inhibition of ACE2 on the regulation of blood pressure and cardiac function in chronically instrumented normotensive and mRen2.Lewis hypertensive rats (Specific Aim 3); and 4)- employ antisense technology and an adenovirus vector to either inhibit or selectively augment, respectively, the expression of cardiac ACE2 in normotensive Lewis and mRen2.Lewis hypertensive rats to study the effects of these maneuvers on cardiac performance in isolated heart per fusion model (Specific Aim 4). The proposed studies will provide a new understanding of the biochemical physiology of the RAS and the mode of action of therapies that depend upon inhibition of either ACE or Ang II receptor blockade.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Program Projects (P01)
Project #
2P01HL051952-11
Application #
6853101
Study Section
Heart, Lung, and Blood Initial Review Group (HLBP)
Project Start
2004-04-01
Project End
2009-03-31
Budget Start
2004-04-01
Budget End
2005-03-31
Support Year
11
Fiscal Year
2004
Total Cost
$224,004
Indirect Cost
Name
Wake Forest University Health Sciences
Department
Type
DUNS #
937727907
City
Winston-Salem
State
NC
Country
United States
Zip Code
27157
Dell'Italia, Louis J; Collawn, James F; Ferrario, Carlos M (2018) Multifunctional Role of Chymase in Acute and Chronic Tissue Injury and Remodeling. Circ Res 122:319-336
Ahmad, Sarfaraz; Ferrario, Carlos M (2018) Chymase inhibitors for the treatment of cardiac diseases: a patent review (2010-2018). Expert Opin Ther Pat 28:755-764
Wang, Hao; Sun, Xuming; Lin, Marina S et al. (2018) G protein-coupled estrogen receptor (GPER) deficiency induces cardiac remodeling through oxidative stress. Transl Res 199:39-51
Ahmad, Sarfaraz; Sun, Xuming; Lin, Marina et al. (2018) Blunting of estrogen modulation of cardiac cellular chymase/RAS activity and function in SHR. J Cell Physiol 233:3330-3342
Li, Tiankai; Zhang, Xiaowei; Cheng, Heng-Jie et al. (2018) Critical role of the chymase/angiotensin-(1-12) axis in modulating cardiomyocyte contractility. Int J Cardiol 264:137-144
Ola, Mohammad Shamsul; Alhomida, Abdullah S; Ferrario, Carlos M et al. (2017) Role of Tissue Renin-angiotensin System and the Chymase/angiotensin-( 1-12) Axis in the Pathogenesis of Diabetic Retinopathy. Curr Med Chem 24:3104-3114
Ferrario, Carlos M; Mullick, Adam E (2017) Renin angiotensin aldosterone inhibition in the treatment of cardiovascular disease. Pharmacol Res 125:57-71
Chappell, Mark C; Al Zayadneh, Ebaa M (2017) Angiotensin-(1-7) and the Regulation of Anti-Fibrotic Signaling Pathways. J Cell Signal 2:
Alencar, Allan K; da Silva, Jaqueline S; Lin, Marina et al. (2017) Effect of Age, Estrogen Status, and Late-Life GPER Activation on Cardiac Structure and Function in the Fischer344×Brown Norway Female Rat. J Gerontol A Biol Sci Med Sci 72:152-162
Guichard, Jason L; Rogowski, Michael; Agnetti, Giulio et al. (2017) Desmin loss and mitochondrial damage precede left ventricular systolic failure in volume overload heart failure. Am J Physiol Heart Circ Physiol 313:H32-H45

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