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Published on: December 2, 2014
Angiogenesis in ischaemic and hypertrophic hearts induced by long-term bradycardia
M D Brown1, M K Davies, O Hudlicka
1School of Sport and Exercise Sciences, University of Birmingham, Birmingham, UK. m.d.brown@bham.ac.uk
Insights
Long-term heart rate reduction (bradycardia) promotes angiogenesis and improves heart function in compromised hearts. This may explain the effectiveness of beta-blockers in treating heart failure.
Area of Science:
- Cardiovascular physiology
- Cardiac remodeling
- Myocardial angiogenesis
Background:
- Chronic heart rate reduction (bradycardia) has been shown to improve cardiac function and promote angiogenesis in normal hearts.
- The effects of bradycardia on compromised hearts with reduced vascular supply are less understood.
Purpose of the Study:
- To review evidence on the impact of chronic heart rate reduction on cardiac angiogenesis and function in hearts with compromised vascular supply.
- To explore the mechanisms underlying these effects and their clinical implications.
Main Methods:
- Review of studies involving bradycardia induction in animal models with hypertensive, haemodynamic overload, or ischaemic heart conditions.
- Analysis of changes in capillarity, coronary blood flow, and cardiac/left ventricular function.
Main Results:
- Bradycardia increased capillarity in hypertrophied and infarcted hearts.
- Cardiac function, depressed by hypertrophy or ischaemia, was preserved or enhanced by heart rate reduction.
- Mechanisms may involve endothelial stretch and VEGF activation, leading to capillary bed expansion.
Conclusions:
- Chronic heart rate reduction induces beneficial myocardial angiogenesis and improves cardiac function in compromised hearts.
- These findings suggest a key mechanism for the therapeutic success of beta-blockers in human heart failure treatment.
Abstract:
Angiogenesis and improved left ventricular function as a consequence of long-term bradycardia were first demonstrated in normal hearts, either electrically paced (rabbits, pigs) or treated with a selective sinus blocking drug alinidine (rats). Here we review the evidence that chronic heart rate reduction can have similar effects in the heart with compromised vascular supply, due to either hypertensive or haemodynamic overload hypertrophy (rats, rabbits) or ischaemic damage (rats, rabbits, pigs). Bradycardia induced over several weeks increased capillarity in all hypertrophied hearts, and in border and remote left ventricular myocardium of infarcted hearts. In some, but not all cases, coronary blood flow was improved by heart rate reduction, suggesting enlargement of the resistance vasculature in some circumstances. Cardiac or left ventricular function indices, which were depressed by hypertrophy or ischaemic damage, were preserved or even enhanced by chronic heart rate reduction. The expansion of the capillary bed in the vascularly compromised heart induced by bradycardia may be stimulated by mechanical stretch of the endothelium and/or VEGF activated by chamber dilation and myocyte stretch. The increased number of capillaries and more homogeneous distribution of capillary perfusion would support the better pump function, even in the absence of higher coronary flow. The beneficial impact of chronic heart rate reduction on myocardial angiogenesis and function in cardiac hypertrophy and infarction may be major factor in the success of beta-blockers in treatment of human heart failure.
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