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April 15, 1998Journal of Clinical Investigation270 citationsOpen Access

Diastolic dysfunction and altered energetics in the alphaMHC403/+ mouse model of familial hypertrophic cardiomyopathy.

MSMatthias SpindlerKSKurt W. SaupeMCMichael E. Christe

Key Result

Hearts from alphaMHC403/+ mice demonstrated work load-dependent diastolic dysfunction and altered energetics, including a 22% decrease in baseline phosphocreatine concentration compared to wild-type hearts.

Key Points

  • The aim is to investigate diastolic dysfunction and bioenergetic changes in the alphaMHC403/+ mouse model of familial hypertrophic cardiomyopathy.
  • Studied alphaMHC403/+ mice with an isolated, isovolumic heart preparation to measure cardiac performance and energetics using 31P nuclear magnetic resonance spectroscopy.
  • Evaluated diastolic function under inotropic stimulation and analyzed phosphocreatine and inorganic phosphate levels.
  • No systolic dysfunction observed; however, diastolic function was impaired with decreased left ventricular relaxation rate and increased end-diastolic pressure.
  • AlphaMHC403/+ hearts exhibited lower phosphocreatine and higher inorganic phosphate levels, leading to reduced free energy from ATP hydrolysis.
  • Unpaced alphaMHC403/+ hearts decreased heart rate significantly more than wild types in response to increased perfusate calcium.

PICO

P
Population
Familial Hypertrophic Cardiomyopathy (n=61)
I
Intervention / Comparator
alphaMHC403/+ mutation vs Wild-type
O
Primary Outcome
Baseline phosphocreatine concentration [PCr] (mM), p=≤0.05

Main Result

Absolute Event Rate: 13.2% vs 17%

p-value: p=≤0.05

Limitations

  • Mice do not reproduce gross cardiac hypertrophy and sudden death seen in human FHC
  • Extrapolation from experimental model to clinical setting must be done with caution

Abstract

An arginine to glutamine missense mutation at position 403 of the beta-cardiac myosin heavy chain causes familial hypertrophic cardiomyopathy. Here we study mice which have this same missense mutation (alphaMHC403/+) using an isolated, isovolumic heart preparation where cardiac performance is measured simultaneously with cardiac energetics using 31P nuclear magnetic resonance spectroscopy. We observed three major alterations in the physiology and bioenergetics of the alphaMHC403/+ mouse hearts. First, while there was no evidence of systolic dysfunction, diastolic function was impaired during inotropic stimulation. Diastolic dysfunction was manifest as both a decreased rate of left ventricular relaxation and an increase in end-diastolic pressure. Second, under baseline conditions alphaMHC403/+ hearts had lower phosphocreatine and increased inorganic phosphate contents resulting in a decrease in the calculated value for the free energy released from ATP hydrolysis. Third, hearts from alphaMHC403/+ hearts that were studied unpaced responded to increased perfusate calcium by decreasing heart rate approximately twice as much as wild types. We conclude that hearts from alphaMHC403/+ mice demonstrate work load-dependent diastolic dysfunction resembling the human form of familial hypertrophic cardiomyopathy. Changes in high-energy phosphate content suggest that an energy-requiring process may contribute to the observed diastolic dysfunction.

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Cite This Study

Spindler et al. (1998) studied Familial Hypertrophic Cardiomyopathy (n=61). alphaMHC403/+ mutation vs. Wild-type was evaluated on Baseline phosphocreatine concentration [PCr] (mM) (p=≤0.05). Hearts from alphaMHC403/+ mice demonstrated work load-dependent diastolic dysfunction and altered energetics, including a 22% decrease in baseline phosphocreatine concentration compared to wild-type hearts.

synapsesocial.com/papers/6a104fd1d91177df95fc9e83https://doi.org/10.1172/jci1940
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