Silent information regulator 1 protects the heart from ischemia/reperfusion

Author(s): Hsu CP, Zhai P, Yamamoto T, Maejima Y, Matsushima S, et al.

Abstract

Background: Silent information regulator 1 (Sirt1), a class III histone deacetylase, retards aging and protects the heart from oxidative stress. We here examined whether Sirt1 is protective against myocardial ischemia/reperfusion (I/R).

Methods and results: Protein and mRNA expression of Sirt1 is significantly reduced by I/R. Cardiac-specific Sirt1(-/-) mice exhibited a significant increase (44±5% versus 15±5%; P=0.01) in the size of myocardial infarction/area at risk. In transgenic mice with cardiac-specific overexpression of Sirt1, both myocardial infarction/area at risk (15±4% versus 36±8%; P=0.004) and terminal deoxynucleotidyl transferase dUTP nick end labeling-positive nuclei (4±3% versus 10±1%; P<0.003) were significantly reduced compared with nontransgenic mice. In Langendorff-perfused hearts, the functional recovery during reperfusion was significantly greater in transgenic mice with cardiac-specific overexpression of Sirt1 than in nontransgenic mice. Sirt1 positively regulates expression of prosurvival molecules, including manganese superoxide dismutase, thioredoxin-1, and Bcl-xL, whereas it negatively regulates the proapoptotic molecules Bax and cleaved caspase-3. The level of oxidative stress after I/R, as evaluated by anti-8-hydroxydeoxyguanosine staining, was negatively regulated by Sirt1. Sirt1 stimulates the transcriptional activity of FoxO1, which in turn plays an essential role in mediating Sirt1-induced upregulation of manganese superoxide dismutase and suppression of oxidative stress in cardiac myocytes. Sirt1 plays an important role in mediating I/R-induced increases in the nuclear localization of FoxO1 in vivo.

Conclusions: These results suggest that Sirt1 protects the heart from I/R injury through upregulation of antioxidants and downregulation of proapoptotic molecules through activation of FoxO and decreases in oxidative stress.

Similar Articles

Diabetes and the risk of heart failure

Author(s): Dhingra R, Vasan RS

Pathophysiology of myocardial reperfusion

Author(s): Fox KA, Bergmann SR, Sobel BE

Chronic pharmacological preconditioning against ischemia

Author(s): Luca MC, Liuni A, Muxel S, Münzel T, Forconi S, et al.

Myocardial fatty acid metabolism in health and disease

Author(s): Lopaschuk GD, Ussher JR, Folmes CD, Jaswal JS, Stanley WC

FoxO transcription factors promote cardiomyocyte survival upon induction of oxidative stress

Author(s): Sengupta A, Molkentin JD, Paik JH, DePinho RA, Yutzey KE

FoxO, autophagy, and cardiac remodeling

Author(s): Ferdous A, Battiprolu PK, Ni YG, Rothermel BA, Hill JA

The FoxO family in cardiac function and dysfunction

Author(s): Ronnebaum SM, Patterson C

Metabolic stress-induced activation of FoxO1 triggers diabetic cardiomyopathy in mice

Author(s): Battiprolu PK, Hojayev B, Jiang N, Wang ZV, Luo X, et al.

Diabetes triggers a PARP1 mediated death pathway in the heart through participation of FoxO1

Author(s): Puthanveetil P, Zhang D, Wang Y, Wang F, Wan A, et al.

Altered acetylcholine and norepinephrine concentrations in diabetic rat hearts

Author(s): Akiyama N, Okumura K, Watanabe Y, Hashimoto H, Ito T, et al.

Glucose for the heart

Author(s): Depre C, Vanoverschelde JL, Taegtmeyer H

Hibernating myocardium

Author(s): Wijns W, Vatner SF, Camici PG

Risk of heart failure in patients with recent-onset type 2 diabetes: population-based cohort study

Author(s): Leung AA, Eurich DT, Lamb DA, Majumdar SR, Johnson JA, et al.

Phosphatases at the heart of FoxO metabolic control

Author(s): Tremblay ML, Giguère V

Adiponectin in the heart and vascular system

Author(s): Ding M, Rzucidlo EM, Davey JC, Xie Y, Liu R, et al.

The role of FoxO in the regulation of metabolism

Author(s): Gross DN, van den Heuvel AP, Birnbaum MJ

FoxO transcription factors; Regulation by AKT and 14-3-3 proteins

Author(s): Tzivion G, Dobson M, Ramakrishnan G

Hypoxia inducible factor-1 expression mediates myocardial response to ischemia late after acute myocardial infarction

Author(s): Parisi Q, Biondi-Zoccai GG, Abbate A, Santini D, Vasaturo F, et al.

Stress-dependent regulation of FOXO transcription factors by the SIRT1 deacetylase

Author(s): Brunet A, Sweeney LB, Sturgill JF, Chua KF, Greer PL, et al.

Oxidative stress, nitric oxide, and diabetes

Author(s): Pitocco D, Zaccardi F, Di Stasio E, Romitelli F, Santini SA, et al.

Potentiation of isosorbide dinitrate effects with N-acetylcysteine in patients with chronic heart failure

Author(s): Mehra A, Shotan A, Ostrzega E, Hsueh W, Vasquez-Johnson J, et al.

Influence of diabetes mellitus on heart failure risk and outcome

Author(s): Bauters C, Lamblin N, Mc Fadden EP, Van Belle E, Millaire A, et al.

Forkhead transcription factors coordinate expression of myocardial KATP channel subunits and energy metabolism

Author(s): Philip-Couderc P, Tavares NI, Roatti A, Lerch R, Montessuit C, et al.

An essential role of the JAK-STAT pathway in ischemic preconditioning

Author(s): Xuan YT, Guo Y, Han H, Zhu Y, Bolli R

Preconditioning the diabetic heart: the importance of Akt phosphorylation

Author(s): Tsang A, Hausenloy DJ, Mocanu MM, Carr RD, Yellon DM