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Micro-particle Image Velocimetry for Velocity Profile Measurements of Micro Blood Flows
Published on: April 25, 2013
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
Abstract:
Density of 15-microm microspheres after left atrial application is the standard measure of regional perfusion. In the heart, substantial differences in microsphere density are seen at spatial resolutions <5 ml, implying perfusion heterogeneity. Microsphere deposition imaging permits a superior evaluation of the distribution pattern. Therefore, fluorescent microspheres (FMS) were applied, FMS deposition in the canine heart was imaged by epifluorescence microscopy in vitro, and the patterns were observed compared with MR images of iron oxide microspheres (IMS) obtained in vivo and in vitro. FMS deposition in myocardial slices revealed the following: 1) a nonrandom distribution, with sequentially applied FMS of different color stacked within the same vessel, 2) general FMS clustering, and 3) rather large areas devoid of FMS (n = 3). This pattern was also seen in reconstructed three-dimensional images (<1 nl resolution) of FMS distribution (n = 4). Surprisingly, the deposition pattern of sequentially applied FMS remained virtually identical over 3 days. Augmenting flow by intracoronary adenosine (>2 microM) enhanced local microsphere density, but did not alter the deposition pattern (n = 3). The nonrandom, temporally stable pattern was quantitatively confirmed by a three-dimensional intermicrosphere distance analysis of sequentially applied FMS. T2-weighted short-axis MR images (2-microl resolution) of IMS revealed similar patterns in vivo and in vitro (n = 6), as seen with FMS. The observed temporally stable microsphere patterns are not consistent with the notion that microsphere deposition is solely governed by blood flow. We propose that at high spatial resolution (<2 microl) structural aspects of the vascular network dominate microsphere distribution, resulting in the organized patterns observed.
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.

