High-resolution imaging reveals a limit in spatial resolution of blood flow measurements by microspheres

Ulrich K M Decking1, Vinay M Pai, Eric Bennett

  • 1Department of Cardiovascular Physiology, Heinrich-Heine-University, 40225 Düsseldorf, Germany. decking@uni-duesseldorf.de

Insights

Microsphere deposition in the heart shows a stable, nonrandom pattern at high resolution, suggesting vascular structure, not just blood flow, dictates distribution. This finding impacts understanding of regional perfusion.

Area of Science:

  • Cardiovascular Physiology
  • Medical Imaging
  • Biomedical Engineering

Background:

  • Regional myocardial perfusion is typically assessed using microsphere density.
  • High-resolution imaging reveals significant heterogeneity in microsphere distribution within the heart.
  • Understanding microsphere deposition patterns is crucial for accurate perfusion assessment.

Purpose of the Study:

  • To evaluate the distribution patterns of fluorescent microspheres (FMS) in canine myocardium.
  • To compare FMS deposition patterns with in vivo and in vitro MR images of iron oxide microspheres (IMS).
  • To investigate the factors influencing microsphere deposition at high spatial resolution.

Main Methods:

  • In vitro epifluorescence microscopy of FMS deposited in canine myocardial slices.
  • Three-dimensional reconstruction and analysis of FMS distribution.
  • In vivo and in vitro T2-weighted short-axis MR imaging of IMS.
  • Quantitative analysis using intermicrosphere distance.

Main Results:

  • FMS exhibited nonrandom distribution, clustering, and avascular areas, forming temporally stable patterns over 3 days.
  • Enhanced blood flow with adenosine increased microsphere density but did not alter the deposition pattern.
  • MR imaging of IMS confirmed similar nonrandom and stable distribution patterns.
  • High spatial resolution (<2 microl) revealed organized microsphere distribution.

Conclusions:

  • Microsphere deposition patterns are temporally stable and nonrandom at high spatial resolution.
  • Vascular network structure, rather than solely blood flow, significantly influences microsphere distribution.
  • These findings challenge the assumption that microsphere density directly reflects perfusion heterogeneity at microscopic levels.