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Baicalin Attenuates Cardiac Dysfunction and Myocardial Remodeling in a Chronic Pressure-Overload Mice Model
Insights
Baicalin protects against cardiac hypertrophy and dysfunction caused by pressure overload in mice. This natural compound reduces heart remodeling, fibrosis, and apoptosis by modulating PPAR signaling pathways.
Area of Science:
- Cardiovascular Research
- Pharmacology
- Molecular Biology
Background:
- Baicalin demonstrates efficacy in various cardiovascular disease animal models.
- The role of baicalin in cardiac hypertrophy was previously unknown.
- Cardiac hypertrophy is a significant risk factor for heart failure.
Purpose of the Study:
- To investigate the protective effects of baicalin on cardiac hypertrophy induced by pressure overload.
- To explore the underlying mechanisms of baicalin's action in cardiac hypertrophy.
Main Methods:
- C57BL/6J mice underwent transverse aortic constriction or Sham surgery.
- Mice were treated with baicalin or vehicle for up to 8 weeks.
- Cardiac function, heart size, and histological/biochemical markers were assessed.
Main Results:
- Pressure overload induced cardiac dysfunction, hypertrophy, apoptosis, and fibrosis, with suppressed PPARα/β/δ expression.
- Baicalin treatment improved cardiac function, reduced mortality, and attenuated hypertrophy, fibrosis, and apoptosis.
- Baicalin increased cardiac PPARα and PPARβ/δ expression without causing lipotoxicity.
Conclusions:
- Baicalin effectively attenuates pressure overload-induced cardiac dysfunction and ventricular remodeling.
- The protective effects are attributed to suppressed cardiac hypertrophy, fibrosis, apoptosis, and metabolic abnormalities.
- Baicalin shows promise as a therapeutic agent for pressure overload-induced heart conditions.
Background/Aims:
Baicalin has been shown to be effective for various animal models of cardiovascular diseases, such as pulmonary hypertension, atherosclerosis and myocardial ischaemic injury. However, whether baicalin plays a role in cardiac hypertrophy remains unknown. Here we investigated the protective effects of baicalin on cardiac hypertrophy induced by pressure overload and explored the potential mechanisms involved.
Methods:
C57BL/6J-mice were treated with baicalin or vehicle following transverse aortic constriction or Sham surgery for up to 8 weeks, and at different time points, cardiac function and heart size measurement and histological and biochemical examination were performed.
Results:
Mice under pressure overload exhibited cardiac dysfunction, high mortality, myocardial hypertrophy, increased apoptosis and fibrosis markers, and suppressed cardiac expression of PPARα and PPARβ/δ. However, oral administration of baicalin improved cardiac dysfunction, decreased mortality, and attenuated histological and biochemical changes described above. These protective effects of baicalin were associated with reduced heart and cardiomyocyte size, lower fetal genes expression, attenuated cardiac fibrosis, lower expression of profibrotic markers, and decreased apoptosis signals in heart tissue. Moreover, we found that baicalin induced PPARα and PPARβ/δ expression in vivo and in vitro. Subsequent experiments demonstrated that long-term baicalin treatment presented no obvious cardiac lipotoxicity.
Conclusions:
The present results demonstrated that baicalin attenuates pressure overload induced cardiac dysfunction and ventricular remodeling, which would be due to suppressed cardiac hypertrophy, fibrosis, apoptosis and metabolic abnormality.
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