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May 15, 2003Journal of Clinical Investigation305 citationsOpen Access

Targeted inhibition of p38 MAPK promotes hypertrophic cardiomyopathy through upregulation of calcineurin-NFAT signaling

JBJulian C. BrazOBOrlando F. BuenoQLQiangrong Liang

Key Result

Targeted inhibition of p38 MAPK in the mouse heart promoted progressive hypertrophic cardiomyopathy and enhanced stimulus-induced hypertrophy through upregulation of calcineurin-NFAT signaling.

Structured PICO

Does targeted inhibition of p38 MAPK promote hypertrophic cardiomyopathy in a transgenic mouse model?

P
Population
Transgenic mice expressing dominant-negative mutants of p38α, MKK3, or MKK6 evaluated for cardiac hypertrophy and functional capacity over 8 months.
I
Intervention
Targeted inhibition of p38 MAPK via dominant-negative mutants, with or without hypertrophic stimuli (aortic banding, Ang II infusion, isoproterenol infusion, or phenylephrine infusion for 14 days)
C
Comparator
Wild-type or non-transgenic control mice (implied)
O
Outcome
Cardiac hypertrophy and myopathysurrogate

Reduced p38 signaling in the heart promotes myocyte growth and hypertrophic cardiomyopathy through enhanced calcineurin-NFAT signaling.

Limitations

  • Disparity between in vitro and in vivo p38 effects
  • Potential for nonspecific toxicity from cardiac overexpression, although the authors provide evidence against this

Abstract

The MAPKs are important transducers of growth and stress stimuli in virtually all eukaryotic cell types. In the mammalian heart, MAPK signaling pathways have been hypothesized to regulate myocyte growth in response to developmental signals or physiologic and pathologic stimuli. Here we generated cardiac-specific transgenic mice expressing dominant-negative mutants of p38alpha, MKK3, or MKK6. Remarkably, attenuation of cardiac p38 activity produced a progressive growth response and myopathy in the heart that correlated with the degree of enzymatic inhibition. Moreover, dominant-negative p38alpha, MKK3, and MKK6 transgenic mice each showed enhanced cardiac hypertrophy following aortic banding, Ang II infusion, isoproterenol infusion, or phenylephrine infusion for 14 days. A mechanism underlying this enhanced-growth profile was suggested by the observation that dominant-negative p38alpha directly augmented nuclear factor of activated T cells (NFAT) transcriptional activity and its nuclear translocation. In vivo, NFAT-dependent luciferase reporter transgenic mice showed enhanced activation in the presence of the dominant-negative p38alpha transgene before and after the onset of cardiac hypertrophy. More significantly, genetic disruption of the calcineurin Abeta gene rescued hypertrophic cardiomyopathy and depressed functional capacity observed in p38-inhibited mice. Collectively, these observations indicate that reduced p38 signaling in the heart promotes myocyte growth through a mechanism involving enhanced calcineurin-NFAT signaling.

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Cite This Study

Braz et al. (2003) studied Hypertrophic cardiomyopathy. Targeted inhibition of p38 MAPK (dominant-negative p38α, MKK3, or MKK6 transgenes) vs. Nontransgenic wild-type mice was evaluated on Cardiac hypertrophy and functional capacity (e.g., fractional shortening, heart-to-body weight ratio). Targeted inhibition of p38 MAPK in the mouse heart promoted progressive hypertrophic cardiomyopathy and enhanced stimulus-induced hypertrophy through upregulation of calcineurin-NFAT signaling.

synapsesocial.com/papers/6a61f40fb8617574e1f5489bhttps://doi.org/10.1172/jci17295
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