Endothelin-1 and isoprenaline co-stimulation causes contractile failure which is partially reversed by MEK inhibition
Felix Münzel1, Ulrike Mühlhäuser, Wolfram-Hubertus Zimmermann
1Institut für Experimentelle und Klinische Pharmakologie und Toxikologie, Friedrich-Alexander-Universität Erlangen-Nürnberg, Fahrstrasse 17, 91054 Erlangen, Germany.
Objective:
The mitogen-activated kinase kinases (MEK)-extracellular signal-regulated kinases (ERK) signaling pathway is activated by agonists like catecholamines or endothelin-1 (ET-1) and has been implicated in cardiac pathology, such as the progression from cardiac hypertrophy to failure. The purpose of the present study, performed in an in vitro model of contractile failure, was to evaluate whether MEK inhibition prevents functional deterioration.
Methods And Results:
Contractile dysfunction was induced in reconstituted rat heart tissue by concomitant treatment with ET-1 (10 nmol/l) and isoprenaline (ISO, 10 nmol/l) for 5 days. While basal force of contraction was unchanged, contractile responsiveness to beta-adrenoceptor agonists was markedly impaired (active force declined to 51% of controls) and was associated with decreased lusitropy. Moreover, in ET-1+ISO-treated heart tissues, reprogramming of gene expression was observed with an increased ratio of beta-myosin heavy chain (MHC) to alpha-MHC mRNA and increased transcript levels of ANF and skeletal/smooth muscle alpha-actin isoforms. The MEK inhibitor U0126 (10 micromol/l) almost completely prevented the reduction in beta-adrenergic responsiveness and the negative lusitropic effect of ET-1+ISO co-stimulation. In addition, U0126 completely normalized ANF gene expression, but did not affect or only marginally affected expression of MHC and alpha-actin isoforms.
Conclusions:
These results suggest that interruption of the MEK-ERK signaling pathway with a specific MEK inhibitor prevents, in part, the occurrence of a pathologic phenotype secondary to excessive stimulation with neurohumoral factors. The MEK-ERK pathway seems to be an important but not exclusive regulatory pathway responsible for the development of contractile dysfunction.
Insights
MEK inhibition prevents cardiac dysfunction caused by excessive neurohumoral stimulation. Blocking the MEK-ERK pathway mitigates impaired beta-adrenergic responsiveness and normalizes ANF gene expression in heart tissue models.
Area of Science:
- Cardiology
- Molecular Biology
- Pharmacology
Background:
- The mitogen-activated kinase kinases (MEK)-extracellular signal-regulated kinases (ERK) pathway is activated by agonists and linked to cardiac pathology, including hypertrophy and failure.
- Understanding MEK-ERK pathway involvement is crucial for developing therapeutic strategies against cardiac dysfunction.
Purpose of the Study:
- To investigate whether MEK inhibition can prevent functional deterioration in an in vitro model of cardiac contractile failure.
Main Methods:
- Cardiac contractile dysfunction was induced in rat heart tissue using endothelin-1 (ET-1) and isoprenaline (ISO).
- The MEK inhibitor U0126 was used to assess its effect on contractile responsiveness, lusitropy, and gene expression.
- Gene expression analysis included beta-myosin heavy chain (MHC), alpha-MHC, atrial natriuretic factor (ANF), and alpha-actin isoforms.
Main Results:
- ET-1+ISO treatment impaired beta-adrenergic responsiveness and lusitropy, altering the expression of cardiac-specific genes.
- U0126 treatment largely prevented the reduction in beta-adrenergic responsiveness and the negative lusitropic effect.
- U0126 normalized ANF gene expression but had minimal impact on MHC and alpha-actin isoform expression.
Conclusions:
- Interruption of the MEK-ERK pathway with a MEK inhibitor partially prevents a pathologic cardiac phenotype induced by excessive neurohumoral stimulation.
- The MEK-ERK pathway is a significant, though not the sole, regulator in the development of cardiac contractile dysfunction.
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