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

Angiogenesis
|November 26, 2005
PubMed

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.

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