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July 20, 2004Circulation58 citationsOpen Access

Celiprolol, A Vasodilatory β-Blocker, Inhibits Pressure Overload–Induced Cardiac Hypertrophy and Prevents the Transition to Heart Failure via Nitric Oxide–Dependent Mechanisms in Mice

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YLYulin LiaoMAMasanori AsakuraSTSeiji Takashima

Key Result

In mice subjected to transverse aortic constriction, celiprolol significantly reduced the ratio of heart weight to body weight compared to control (6.61 vs 8.70 mg/g, P<0.01).

Structured PICO

Does celiprolol prevent pressure overload-induced cardiac hypertrophy and transition to heart failure via NO-dependent mechanisms in mice?

P
Population
C57BL/6 male mice subjected to transverse aortic constriction and rat neonatal cardiac myocytes.
I
Intervention
Celiprolol (100 mg/kg/d PO in mice)
C
Comparator
Transverse aortic constriction (TAC) alone without celiprolol, and L-NAME treated groups
O
Outcome
Cardiac hypertrophy (heart weight to body weight ratio), lung weight to body weight ratio, and LV fractional shorteningsurrogate

Celiprolol attenuates pressure overload-induced cardiac hypertrophy and prevents the transition to heart failure in mice via a nitric oxide-dependent mechanism.

Main Result

Absolute Event Rate: 6.61% vs 8.7%

p-value: p=<0.01

Abstract

BACKGROUND: The blockade of beta-adrenergic receptors reduces both mortality and morbidity in patients with chronic heart failure, but the cellular mechanism remains unclear. Celiprolol, a selective beta(1)-blocker, was reported to stimulate the expression of endothelial NO synthase (eNOS) in the heart, and NO levels have been demonstrated to be related to myocardial hypertrophy and heart failure. Thus, we aimed to clarify whether celiprolol attenuates both myocardial hypertrophy and heart failure via the NO-signal pathway. METHODS AND RESULTS: In rat neonatal cardiac myocytes, celiprolol inhibited protein synthesis stimulated by either isoproterenol or phenylephrine, which was partially suppressed by N(G)-nitro-L-arginine methyl ester (L-NAME). Four weeks after transverse aortic constriction (TAC) in C57BL/6 male mice, the ratio of heart weight to body weight (mg/g) (8.70+/-0.42 in TAC, 6.61+/-0.44 with celiprolol 100 mg x kg(-1) x d(-1) PO, P<0.01) and the ratio of lung weight to body weight (mg/g) (10.27+/-1.08 in TAC, 7.11+/-0.70 with celiprolol 100 mg x kg(-1) x d(-1) PO, P<0.05) were lower and LV fractional shortening was higher in the celiprolol-treated groups than in the TAC group. All of these improvements were blunted by L-NAME. Celiprolol treatment significantly increased myocardial eNOS and activated phosphorylation of eNOS. Myocardial mRNA levels of natriuretic peptide precursor type B and protein inhibitor of NO synthase, which were increased in the TAC mice, were decreased in the celiprolol-treated mice. CONCLUSIONS: These findings indicated that celiprolol attenuates cardiac myocyte hypertrophy both in vitro and in vivo and halts the process leading from hypertrophy to heart failure. These effects are mediated by a selective beta1-adrenergic receptor blockade and NO-dependent pathway.

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Cite This Study

Liao et al. (2004) studied Pressure Overload-Induced Cardiac Hypertrophy and Heart Failure. Celiprolol vs. TAC group (no celiprolol) was evaluated on Ratio of heart weight to body weight (mg/g) (p=<0.01). In mice subjected to transverse aortic constriction, celiprolol significantly reduced the ratio of heart weight to body weight compared to control (6.61 vs 8.70 mg/g, P<0.01).

synapsesocial.com/papers/6a7794cbd3a6aa87c6bdd5d9https://doi.org/10.1161/01.cir.0000137831.08683.e1
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