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Genetic alterations that inhibit in vivo pressure-overload hypertrophy prevent cardiac dysfunction despite increased
Giovanni Esposito1, Antonio Rapacciuolo, Sathyamangla V Naga Prasad
1Department of Medicine, Duke University Medical Center, Durham, NC 27710, USA.
Insights
Cardiac hypertrophy may not be essential for maintaining normal heart function during pressure overload. Studies show blunted hypertrophy preserves cardiac function without normalizing wall stress, challenging long-standing hypotheses.
Area of Science:
- Cardiology
- Molecular Biology
- Physiology
Background:
- The traditional view posits cardiac hypertrophy normalizes wall stress to preserve heart function.
- Epidemiological data links cardiac hypertrophy to increased mortality, questioning this hypothesis.
Purpose of the Study:
- To investigate if cardiac hypertrophy is necessary for preserving cardiac function under pressure overload.
- To examine the role of wall stress normalization in cardiac adaptation.
Main Methods:
- Utilized two genetically altered mouse models with blunted hypertrophic responses to pressure overload.
- Measured end-systolic wall stress (sigma(es)) via sonomicrometry and cardiac function using serial echocardiography.
- Analyzed downstream signaling pathways, including phosphoinositide 3-kinase.
Main Results:
- Transgenic mice with blunted hypertrophy failed to normalize sigma(es) but showed minimal cardiac function deterioration.
- Wild-type mice with pressure overload exhibited increased chamber dimensions and declining cardiac function.
- Phosphoinositide 3-kinase signaling may be crucial in the progression from hypertrophy to heart failure.
Conclusions:
- Cardiac hypertrophy and wall stress normalization may not be required to maintain cardiac function during pressure overload.
- These findings challenge the established compensatory role of hypertrophy in preserving cardiac function.
Background:
A long-standing hypothesis has been that hypertrophy is compensatory and by normalizing wall stress acts to maintain normal cardiac function. Epidemiological data, however, have shown that cardiac hypertrophy is associated with increased mortality, thus casting doubt on the validity of this hypothesis.
Methods And Results:
To determine whether cardiac hypertrophy is necessary to preserve cardiac function, we used 2 genetically altered mouse models that have an attenuated hypertrophic response to 8 weeks of pressure overload. End-systolic wall stress (sigma(es)) obtained by sonomicrometry after 1 week of pressure overload showed complete normalization of sigma(es) in pressure-overloaded wild-type mice (287+/-39 versus sham, 254+/-34 g/cm2), whereas the blunted hypertrophic response in the transgenic mice was inadequate to normalize sigma(es) (415+/-81 g/cm2, P<0.05). Remarkably, despite inadequate normalization of sigma(es), cardiac function as measured by serial echocardiography showed little deterioration in either of the pressure-overloaded genetic models with blunted hypertrophy. In contrast, wild-type mice with similar pressure overload showed a significant increase in chamber dimensions and progressive deterioration in cardiac function. Analysis of downstream signaling pathways in the late stages of pressure overload suggests that phosphoinositide 3-kinase may play a pivotal role in the transition from hypertrophy to heart failure.
Conclusions:
These data suggest that under conditions of pressure overload, the development of cardiac hypertrophy and normalization of wall stress may not be necessary to preserve cardiac function, as previously hypothesized.
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