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October 2, 2001Proceedings of the National Academy of Sciences336 citationsOpen Access

The in vivo role of p38 MAP kinases in cardiac remodeling and restrictive cardiomyopathy

PLPu LiaoDGDimitrios GeorgakopoulosAKAttila Kovács

Key Result

Targeted activation of p38 MAP kinase in ventricular myocytes resulted in premature death at 7-9 weeks, marked interstitial fibrosis, systolic contractile depression, and restrictive diastolic abnormalities.

Key Points

  • This research aims to explore how p38 MAP kinases affect cardiac remodeling and the development of restrictive cardiomyopathy.
  • Used gene-switch transgenic strategy in vivo to activate p38 MAP kinase in ventricular myocytes.
  • Analyzed echocardiographic and pressure-volume metrics of cardiac function.
  • Compared effects of activated mutants MKK3bE and MKK6bE on transgenic hearts.
  • Transgene expression led to premature death at 7-9 weeks and significant interstitial fibrosis.
  • Both transgenic heart models showed systolic contractile depression and restrictive diastolic abnormalities with increased passive chamber stiffness.
  • MKK3bE hearts exhibited increased end-systolic volumes and myocyte atrophy, while MKK6bE hearts had reduced end-diastolic size and modest myocyte growth.

Structured PICO

P
Population
Transgenic model with targeted activation of p38 MAP kinase in ventricular myocytes using a gene-switch strategy with activated mutants of upstream kinases MKK3bE and MKK6bE
I
Intervention
Targeted activation of p38 MAP kinase in ventricular myocytes via MKK3bE and MKK6bE transgenes
O
Outcome
Cardiac remodeling, survival, and functional changes assessed by echocardiographic and pressure-volume analysessurrogate

In vivo activation of p38 MAP kinase in ventricular myocytes causes negative inotropic effects, restrictive diastolic abnormalities, and specific patterns of ventricular end-systolic remodeling.

Abstract

Stress-induced mitogen-activated protein kinase (MAP) p38 is activated in various forms of heart failure, yet its effects on the intact heart remain to be established. Targeted activation of p38 MAP kinase in ventricular myocytes was achieved in vivo by using a gene-switch transgenic strategy with activated mutants of upstream kinases MKK3bE and MKK6bE. Transgene expression resulted in significant induction of p38 kinase activity and premature death at 7-9 weeks. Both groups of transgenic hearts exhibited marked interstitial fibrosis and expression of fetal marker genes characteristic of cardiac failure, but no significant hypertrophy at the organ level. Echocardiographic and pressure-volume analyses revealed a similar extent of systolic contractile depression and restrictive diastolic abnormalities related to markedly increased passive chamber stiffness. However, MKK3bE-expressing hearts had increased end-systolic chamber volumes and a thinned ventricular wall, associated with heterogeneous myocyte atrophy, whereas MKK6bE hearts had reduced end-diastolic ventricular cavity size, a modest increase in myocyte size, and no significant myocyte atrophy. These data provide in vivo evidence for a negative inotropic and restrictive diastolic effect from p38 MAP kinase activation in ventricular myocytes and reveal specific roles of p38 pathway in the development of ventricular end-systolic remodeling.

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Cite This Study

Liao et al. (2001) studied Cardiac remodeling and restrictive cardiomyopathy. Targeted activation of p38 MAP kinase (MKK3bE and MKK6bE mutants) was evaluated on Cardiac remodeling, systolic contractile depression, and restrictive diastolic abnormalities. Targeted activation of p38 MAP kinase in ventricular myocytes resulted in premature death at 7-9 weeks, marked interstitial fibrosis, systolic contractile depression, and restrictive diastolic abnormalities.

synapsesocial.com/papers/6a219b6ccdf8429e7e5fdc0bhttps://doi.org/10.1073/pnas.211086598
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