BRANCHING PATTERNS IN THE PORCINE CORONARY ARTERIAL TREE - ESTIMATION OF FLOW HETEROGENEITY

被引:150
作者
VANBAVEL, E
SPAAN, JAE
机构
[1] Cardiovasc. Res. Institute Amsterdam, Dept. of Med. Phys. and Informatics, University of Amsterdam
[2] Dept. of Med. Phys. and Informatics, 1105 AZ Amsterdam
关键词
CORONARY CIRCULATION; FRACTALS; FLOW HETEROGENEITY; TOPOLOGY; STRAHLER ORDERING;
D O I
10.1161/01.RES.71.5.1200
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
The aim of this study is to quantify the porcine coronary arterial branching pattern and to use this quantification for the interpretation of flow heterogeneity. Two casts of the coronary arterial tree were made at diastolic arrest and maximal dilation. The relation between length and diameter of arterial segments was quantified, as well as the area expansion ratio and diameter symmetry of vascular nodes. These relations were used to construct computer models of the coronary arterial tree, covering diameters between 10 and 500 mum. Topology of these simulated trees was analyzed using Strahler ordering. Bifurcation ratio, diameter ratio, and length ratio were constant along orders 2-8 and equal to 3.30, 1.51, and 1.63, respectively. In each order, the number of segments per Strahler vessel was almost geometrically distributed. For the lowest orders, these predictions were confirmed by direct observations. From the network model, local pressure and flow were also predicted: Pressure fell from 90 to 32 mm Hg at the 10-mum level. The coefficient of variation (CV) of How in individual segments was dependent on the number of perfused terminal segments (N(t)) according to the fractal relation CV(N(t)) approximately N(t)(1-D), where D is the fractal dimension (1.20). CV of flow in 1-g tissue units was predicted to be 18%. This study shows that the structure of the coronary arterial bed is an important determinant of the fractal nature of local flow heterogeneity.
引用
收藏
页码:1200 / 1212
页数:13
相关论文
共 37 条
[1]   PROPAGATION VELOCITY AND REFLECTION OF PRESSURE WAVES IN THE CANINE CORONARY-ARTERY [J].
ARTS, T ;
KRUGER, RTI ;
VANGERVEN, W ;
LAMBREGTS, JAC ;
RENEMAN, RS .
AMERICAN JOURNAL OF PHYSIOLOGY, 1979, 237 (04) :H469-H474
[2]   PROFOUND SPATIAL HETEROGENEITY OF CORONARY RESERVE - DISCORDANCE BETWEEN PATTERNS OF RESTING AND MAXIMAL MYOCARDIAL BLOOD-FLOW [J].
AUSTIN, RE ;
ALDEA, GS ;
COGGINS, DL ;
FLYNN, AE ;
HOFFMAN, JIE .
CIRCULATION RESEARCH, 1990, 67 (02) :319-331
[3]   MICROVASCULATURE OF DOG LEFT-VENTRICULAR MYOCARDIUM [J].
BASSINGT.JB ;
YIPINTSO.T ;
HARVEY, RB .
MICROVASCULAR RESEARCH, 1974, 7 (02) :229-249
[4]  
Bassingthwaighte J. B., 1972, MYOCARDIAL BLOOD FLO, P197
[5]   FRACTAL NATURE OF REGIONAL MYOCARDIAL BLOOD-FLOW HETEROGENEITY [J].
BASSINGTHWAIGHTE, JB ;
KING, RB ;
ROGER, SA .
CIRCULATION RESEARCH, 1989, 65 (03) :578-590
[6]   MICROVASCULAR PRESSURES AND RESISTANCES IN THE LEFT-VENTRICULAR SUBEPICARDIUM AND SUBENDOCARDIUM [J].
CHILIAN, WM .
CIRCULATION RESEARCH, 1991, 69 (03) :561-570
[7]  
COX DR, 1965, THEORY STOCHASTIC PR, P76
[8]   MICRO-CIRCULATORY MODEL RELATING GEOMETRICAL VARIATION TO CHANGES IN PRESSURE AND FLOW-RATE [J].
FENTON, BM ;
ZWEIFACH, BW .
ANNALS OF BIOMEDICAL ENGINEERING, 1981, 9 (04) :303-321
[9]   SPATIAL HETEROGENEITY OF LOCAL BLOOD-FLOW AND METABOLITE CONTENT IN DOG HEARTS [J].
FRANZEN, D ;
CONWAY, RS ;
ZHANG, H ;
SONNENBLICK, EH ;
ENG, C .
AMERICAN JOURNAL OF PHYSIOLOGY, 1988, 254 (02) :H344-H353
[10]  
HACKING W, 1991, International Journal of Microcirculation Clinical and Experimental, V10, P380