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July 19, 2010Journal of Clinical Investigation338 citationsOpen Access

MTORC1 regulates cardiac function and myocyte survival through 4E-BP1 inhibition in mice

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DZDenghong ZhangRCRiccardo ContuMLMichael V.G. Latronico

Key Result

Ablation of Mtor in adult mouse myocardium resulted in fatal dilated cardiomyopathy, which was markedly improved by co-ablation of 4E-BP1.

Key Points

  • To determine the mechanistic role of MTOR and its downstream target 4E-BP1 in regulating myocardial function, stress response, and cardiomyocyte survival.
  • Generated adult mice with cardiac-specific ablation of Mtor and examined cardiac structure, autophagy, apoptosis, and mitochondrial integrity under baseline and pressure-overload conditions.
  • Ablated the 4E-BP1 gene concurrently with Mtor to test whether removing 4E-BP1 rescues the dilated cardiomyopathy phenotype and survival defects.
  • Adult myocardial Mtor ablation induced fatal dilated cardiomyopathy marked by increased cardiomyocyte apoptosis, autophagy, disrupted mitochondrial structure, and accumulation of active 4E-BP1.
  • Subjecting Mtor-ablated mice to pressure overload led to an impaired hypertrophic response and accelerated progression to heart failure.
  • Dual ablation of 4E-BP1 and Mtor significantly reduced apoptosis, rescued cardiac function, and improved overall survival compared to Mtor ablation alone.

Structured PICO

Does ablation of Mtor and 4E-BP1 affect cardiac function and myocyte survival in adult mice?

P
Population
Adult mice
I
Intervention
Ablation of Mtor gene, and combined ablation of Mtor and 4E-BP1 genes, with or without pressure overload
O
Outcome
Cardiac function, myocyte survival, apoptosis, autophagy, mitochondrial structure, and heart failure progressionsurrogate

MTORC1 regulates cardiomyocyte viability and heart failure progression through 4E-BP1 inhibition, identifying a potential novel therapeutic target for heart failure.

Abstract

Mechanistic target of rapamycin (MTOR) plays a critical role in the regulation of cell growth and in the response to energy state changes. Drugs inhibiting MTOR are increasingly used in antineoplastic therapies. Myocardial MTOR activity changes during hypertrophy and heart failure (HF). However, whether MTOR exerts a positive or a negative effect on myocardial function remains to be fully elucidated. Here, we show that ablation of Mtor in the adult mouse myocardium results in a fatal, dilated cardiomyopathy that is characterized by apoptosis, autophagy, altered mitochondrial structure, and accumulation of eukaryotic translation initiation factor 4E-binding protein 1 (4E-BP1). 4E-BP1 is an MTOR-containing multiprotein complex-1 (MTORC1) substrate that inhibits translation initiation. When subjected to pressure overload, Mtor-ablated mice demonstrated an impaired hypertrophic response and accelerated HF progression. When the gene encoding 4E-BP1 was ablated together with Mtor, marked improvements were observed in apoptosis, heart function, and survival. Our results demonstrate a role for the MTORC1 signaling network in the myocardial response to stress. In particular, they highlight the role of 4E-BP1 in regulating cardiomyocyte viability and in HF. Because the effects of reduced MTOR activity were mediated through increased 4E-BP1 inhibitory activity, blunting this mechanism may represent a novel therapeutic strategy for improving cardiac function in clinical HF.

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Cite This Study

Zhang et al. (2010) studied Dilated cardiomyopathy and heart failure. Mtor ablation and 4E-BP1 co-ablation was evaluated on Cardiac function, apoptosis, and survival. Ablation of Mtor in adult mouse myocardium resulted in fatal dilated cardiomyopathy, which was markedly improved by co-ablation of 4E-BP1.

synapsesocial.com/papers/6a15573a37103a43379f95d2https://doi.org/10.1172/jci43008
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