Peripheral flow response to transient arterial forearm occlusion does not reflect myocardial perfusion reserve

M Bøttcher1, M M Madsen, J Refsgaard

  • 1Department of Cardiology B, Aarhus University Hospital, University of Aarhus, Aarhus, Denmark. mboe@dadlnet.dk

Circulation
|February 27, 2001
PubMed

Insights

Peripheral microvascular function does not predict myocardial perfusion. This study found no correlation between forearm blood flow responses and myocardial perfusion, suggesting different regulatory mechanisms.

Area of Science:

  • Cardiovascular Physiology
  • Microvascular Function
  • Myocardial Perfusion Assessment

Background:

  • Systemic arterial function evaluation using ultrasonography is common.
  • Endothelial function in coronary and brachial arteries shows a documented correlation.
  • The relationship between systemic microcirculation and myocardial perfusion remains unclear.

Purpose of the Study:

  • To investigate if peripheral microcirculation assessment can serve as a surrogate marker for myocardial perfusion.
  • To determine the correlation between microcirculatory beds in the periphery and the myocardium.

Main Methods:

  • Studied 23 patients with coronary artery disease (CAD), 16 with syndrome X (SX), and 45 healthy controls (C).
  • Myocardial perfusion measured using Positron Emission Tomography (PET) at rest and after dipyridamole infusion.
  • Brachial artery blood flow assessed via Doppler ultrasound at rest and after reactive hyperemia (transient forearm ischemia).

Main Results:

  • Both myocardial perfusion (after dipyridamole) and peripheral forearm flow (after ischemia) increased significantly in all groups.
  • No significant correlations were observed between peripheral and myocardial microcirculatory beds.
  • This lack of correlation held true for resting flow, hyperemic flow, and flow reserve (r(2)<0.1, P:=NS).

Conclusions:

  • Peripheral perfusion responses to reactive hyperemia do not correlate with dipyridamole-induced myocardial hyperemia.
  • This suggests distinct mechanisms governing microvascular activation and regulation in different vascular beds.
  • Findings indicate that extrapolations between peripheral and myocardial microcirculatory assessments are not scientifically suitable.
Abstract

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