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Murray's law and the bifurcation angle in the arterial micro-circulation system and their application to the design of microfluidics SCIE SCOPUS

Title
Murray's law and the bifurcation angle in the arterial micro-circulation system and their application to the design of microfluidics
Authors
Lee, JYLee, SJ
Date Issued
2010-01
Publisher
SPRINGER HEIDELBERG
Abstract
Murray's law which is related to the bifurcations of vascular blood vessels states that the cube of a parent vessel's diameter equals the sum of the cubes of the daughter vessels' diameters D-0(3) - D-1(3) + D-2(3), alpha - D-0(3)/(D-1(3) + D-2(3)) - 1, where D-0, D-1, and D-2 are the diameters of the parent and two daughter vessels, respectively and a is the ratio). The structural characteristics of the vessels are crucial in the development of the cardiovascular system as well as for the proper functioning of an organism. In order to understand the vascular circulation system, it is essential to understand the design rules or scaling laws of the system under a homeostatic condition. In this study, Murray's law in the extraembryonic arterial bifurcations and its relationship with the bifurcation angle (theta) using 3-day-old chicken embryos in vivo has been investigated. Bifurcation is an important geometric factor in biological systems, having a significant influence on the circulation in the vascular system. Parameters such as diameter and bifurcation angle of all the 140 vessels tested were measured using image analysis softwares. The experimental results for alpha (= 1.053 +/- 0.188) showed a good agreement with the ratio of 1 for Murray's law. Furthermore, the diameter relation alpha approached the theoretical value of 1 as the diameter of parent vessel D-0 decreased below 100 mu m. The bifurcation angle theta decreased as D-0 increased and vice versa. For the arterial bifurcations of chicken embryos tested in this study, the bifurcation pattern appears to be symmetric (D-1 = D-2). The bifurcation angle exhibited a nearly constant value of 77 degrees, close to the theoretical value of 75 degrees for a symmetric bifurcation.
Keywords
Murray' s law; Cubic relationship; Arterial bifurcation; Micro-circulation; Bifurcation angle; Minimum work principle; Design rule; CARDIOVASCULAR-SYSTEM; BRANCHING ANGLES; SHEAR-STRESS; BLOOD-FLOW; TREES; VESSELS; MODELS; OPTIMIZATION; PRINCIPLE; NETWORKS
URI
https://oasis.postech.ac.kr/handle/2014.oak/26434
DOI
10.1007/S10404-009-0454-1
ISSN
1613-4982
Article Type
Article
Citation
MICROFLUIDICS AND NANOFLUIDICS, vol. 8, no. 1, page. 85 - 95, 2010-01
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이상준LEE, SANG JOON
Dept of Mechanical Enginrg
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