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March 7, 2008Journal of Applied Physiology172 citationsOpen Access

Scaling of myocardial mass to flow and morphometry of coronary arteries

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JCJenny S. ChoyGKGhassan S. Kassab

Structured PICO

P
Population
8 normal porcine hearts of 117-244 g (mean of 177.5 +/- 32.7 g)
I
Intervention
Perfusion of coronary subtrees with polymer (Microfil) at 100 mmHg to obtain rubber casts for morphometric and flow analysis
O
Outcome
Relationship between morphological (diameter, length, and volume) and functional (flow) parameters of the coronary arterial tree and myocardial mass

This preclinical study establishes specific power-law scaling relationships between coronary arterial morphometry, flow, and myocardial mass, revealing fundamental design principles of the coronary vasculature.

Abstract

There is no doubt that scaling relations exist between myocardial mass and morphometry of coronary vasculature. The purpose of this study is to quantify several morphological (diameter, length, and volume) and functional (flow) parameters of the coronary arterial tree in relation to myocardial mass. Eight normal porcine hearts of 117-244 g (mean of 177.5 +/- 32.7) were used in this study. Various coronary subtrees of the left anterior descending, right coronary, and left circumflex arteries were perfused at pressure of 100 mmHg with different colors of a polymer (Microfil) to obtain rubber casts of arterial trees corresponding to different regions of myocardial mass. Volume, diameter, and cumulative length of coronary arteries were reconstructed from casts to analyze their relationship to the perfused myocardial mass. Volumetric flow was measured in relationship with perfused myocardial mass. Our results show that arterial volume is linearly related to regional myocardial mass, whereas the sum of coronary arterial branch lengths, vessel diameters, and volumetric flow show an approximately 3/4, 3/8, and 3/4 power-law relationship, respectively, in relation to myocardial mass. These scaling laws suggest fundamental design principles underlying the structure-function relationship of the coronary arterial tree that may facilitate diagnosis and management of diffuse coronary artery disease.

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Cite This Study

Choy et al. (2008) studied this question.

synapsesocial.com/papers/69d570ca75589c71d767df33https://doi.org/10.1152/japplphysiol.01261.2007
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