Growing lines of evidence suggest that the life span of the organisms are regulated by defined molecular mechanisms, including silent information regulator2 (Sir2) family histone deacetylases (HDACs), anti- oxidants, such as catalase and superoxide dismutase, and Forkhead box, class O (FOXO) family transcription factors. These mechanisms are evolutionarily conserved and thus expected to regulate fundamental biological functions. These factors not only extend the maximum lifespan, but also retard aging process in a wide variety of animals. Importantly, the longevity factors in the lower organisms confer stress- resistance to the organism. However, it is unclear whether or not these regulators of longevity also affect aging and the stress resistance of individual post-mitotic organs, including the heart, in higher organisms. Yeast Sir2, an NAD+ dependent HDAC and a founding member of the HDAC class III family, functions in a wide array of cellular processes, including gene silencing, longevity, and DNA damage repair. We have reported that Sir2alpha, a mouse homologue, plays an essential role in mediating cell survival in cardiac myocytes in vitro. At present, however, very little is known about the function of Sir2alpha in mammals at the organ levels. In order to elucidate the in vivo function of Sir2alpha, we have recently generated both persistent and conditional transgenic mice with cardiac specific expression of Sir2alpha. Our central hypotheses in this study are that Sir2alpha mediates anti-aging as well as cell protective effects in the heart in vivo. We will: 1) Examine whether the known longevity factors, such as Sir2alpha, slow cardiac aging, 2) Examine whether the known longevity factors, including Sir2alpha, confer stress resistance to the heart, and 3) Identify the molecular mechanisms by which the longevity factors confer stress resistance to cardiac myocytes. Our study will elucidate the mechanisms regulating aging of cardiac myocytes and identify the effective method to make the heart stress-resistant. Knowledge obtained from this study should be useful not only for the development of novel modalities for treatment of ischemic heart diseases and congestive heart failure but also for the prevention of age-associated complications in the elderly. ? ? ?

Agency
National Institute of Health (NIH)
Institute
National Institute on Aging (NIA)
Type
Research Project (R01)
Project #
1R01AG028787-01
Application #
7139107
Study Section
Special Emphasis Panel (ZRG1-CVS-P (04))
Program Officer
Finkelstein, David B
Project Start
2006-08-15
Project End
2007-05-31
Budget Start
2006-08-15
Budget End
2007-05-31
Support Year
1
Fiscal Year
2006
Total Cost
$318,775
Indirect Cost
Name
University of Medicine & Dentistry of NJ
Department
Anatomy/Cell Biology
Type
Schools of Medicine
DUNS #
623946217
City
Newark
State
NJ
Country
United States
Zip Code
07107
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Maejima, Yasuhiro; Sadoshima, Junichi (2014) SUMOylation: a novel protein quality control modifier in the heart. Circ Res 115:686-9
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Sciarretta, Sebastiano; Zhai, Peiyong; Shao, Dan et al. (2012) Rheb is a critical regulator of autophagy during myocardial ischemia: pathophysiological implications in obesity and metabolic syndrome. Circulation 125:1134-46
Oka, Shin-Ichi; Hsu, Chiao-Po; Sadoshima, Junichi (2012) Regulation of cell survival and death by pyridine nucleotides. Circ Res 111:611-27
Sciarretta, Sebastiano; Zhai, Peiyong; Volpe, Massimo et al. (2012) Pharmacological modulation of autophagy during cardiac stress. J Cardiovasc Pharmacol 60:235-41
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Cho, Jaeyeaon; Zhai, Peiyong; Maejima, Yasuhiro et al. (2011) Myocardial injection with GSK-3?-overexpressing bone marrow-derived mesenchymal stem cells attenuates cardiac dysfunction after myocardial infarction. Circ Res 108:478-89

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