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Published on: June 3, 2018
Leukemia inhibitory factor is augmented in the heart in experimental heart failure
Michihisa Jougasaki1, Hanna Leskinen, Amy M Larsen
1Institute for Clinical Research, National Hospital Kyushu Cardiovascular Center, 8-1 Shiroyama-cho, 892-0853, Kagoshima, Japan. michi@qjun.hosp.go.jp
Insights
Leukemia inhibitory factor (LIF) expression and protein levels increase in the failing heart. This suggests a role for LIF in the pathophysiology of congestive heart failure (CHF).
Area of Science:
- Cardiovascular Biology
- Cytokine Signaling
- Heart Failure Pathophysiology
Background:
- Leukemia inhibitory factor (LIF) is a cytokine known to induce cardiac myocyte hypertrophy.
- The localization and regulation of LIF in the heart, particularly in congestive heart failure (CHF), are not well understood.
Purpose of the Study:
- To investigate the expression and localization of LIF in a canine model of experimental CHF.
- To determine if LIF expression is altered in the failing heart and correlate it with cardiac function parameters.
Main Methods:
- Utilized immunohistochemistry to assess LIF protein levels in normal and failing canine hearts.
- Employed Northern blot analysis to quantify cardiac LIF mRNA levels.
- Performed linear regression analysis to correlate LIF mRNA with hemodynamic and echocardiographic parameters.
Main Results:
- LIF immunoreactivity was significantly increased in myocytes of failing hearts compared to normal hearts.
- Cardiac LIF mRNA levels were elevated in both atria and ventricles of CHF canines.
- Significant positive correlations were observed between LIF mRNA and atrial pressure, left ventricular dimensions, and left ventricular mass index, with an inverse correlation to ejection fraction.
Conclusions:
- Cardiac LIF expression and gene expression are upregulated in a canine model of experimental CHF.
- These findings suggest a potential role for LIF in the pathophysiology of congestive heart failure.
Abstract:
Leukemia inhibitory factor (LIF) is a pleiotropic cytokine that induces cardiac myocyte hypertrophy through the signal transducing molecule, glycoprotein 130. To date, localization of LIF in the heart and regulation of cardiac LIF expression in congestive heart failure (CHF) remain undefined. The present study investigates the potential activation of LIF expression in the failing canine heart that was produced by progressive rapid ventricular pacing. Immunohistochemistry for LIF revealed that LIF immunoreactivity was present in the atrial and ventricular myocytes of the normal heart and was markedly increased in the failing heart as compared to the normal heart. Northern blot analysis demonstrated that cardiac LIF mRNA was increased in both atrium and ventricle in CHF as compared to the normal heart (P<0.01). Linear regression analysis revealed a positive correlation between atrial LIF mRNA and atrial pressure (r=0.87, P<0.001 in right atrium and r=0.86, P<0.001 in left atrium). Positive correlations between left ventricular LIF mRNA and left ventricular dimensions (r=0.91, P<0.0001 in end-systolic diameter; r=0.86, P<0.001 in end-diastolic diameter), and an inverse correlation between left ventricular LIF mRNA and left ventricular ejection fraction (EF) were observed (r=-0.93, P<0.0001). There was a positive correlation between left ventricular LIF mRNA and left ventricular mass index (LVMI) (r=0.85, P<0.001). The present study demonstrates that cardiac LIF immunoreactivity and its gene expression are increased in a canine model of experimental CHF and suggests a potential role for LIF in the pathophysiology of CHF.
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