Vascular tree structure affects lung blood flow heterogeneity simulated in three dimensions

被引:46
作者
Parker, JC
Cave, CB
Ardell, JL
Hamm, CR
Williams, SG
机构
[1] UNIV S ALABAMA,DEPT PEDIAT,MOBILE,AL 36688
[2] UNIV S ALABAMA,DEPT MATH,MOBILE,AL 36688
关键词
regional pulmonary blood flow; pulmonary circulation; gravity gradients; fractal analysis; relative dispersion; computer simulation; distance correlation;
D O I
10.1152/jappl.1997.83.4.1370
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Pulmonary arterial tree structures related to blood flow heterogeneity were simulated by using a symmetrical, bifurcating model in three-dimensional space. The branch angle (Theta), daughter-parent length ratio (r(L)), branch rotation angle (phi), and branch fraction of parent flow (gamma) for a single bifurcation were defined and repeated sequentially through 11 generations. With phi fixed at 90 degrees, tree structures were generated with Theta between 60 and 90 degrees, r(L) between 0.65 and 0.85, and an initial segment length of 5.6 cm and sectioned into 1-cm(3) samples for analysis. Blood flow relative dispersions (RD%) between 52 and 42% and fractal dimensions (D-s) between 1.20 and 1.15 in 1-cm(3) samples were observed even with equal branch flows. When gamma not equal 0.5, RD% increased, but D-s either decreased with gravity bias of higher branch flows or increased with random assignment of higher flows. Blood flow gradients along gravity and centripetal vectors increased with biased flow assignment of higher flows, and blood flows correlated negatively with distance only when gamma not equal 0.5. Thus a recursive branching vascular tree structure simulated D-s and RD% values for blood flow heterogeneity similar to those observed experimentally in the pulmonary circulation due to differences in the number of terminal arterioles per 1-cm(3) sample, but blood flow gradients and a negative correlation of flows with distance required unequal partitioning of blood flows at branch points.
引用
收藏
页码:1370 / 1382
页数:13
相关论文
共 46 条
[41]   GRAVITY AND PULMONARY BLOOD-FLOW DISTRIBUTION [J].
WEST, JB .
JOURNAL OF APPLIED PHYSIOLOGY, 1992, 73 (05) :2201-2201
[42]   DISTRIBUTION OF BLOOD FLOW AND PRESSURE-FLOW RELATIONS OF WHOLE LUNG [J].
WEST, JB ;
DOLLERY, CT .
JOURNAL OF APPLIED PHYSIOLOGY, 1965, 20 (02) :175-+
[43]   DISTRIBUTION OF BLOOD FLOW IN ISOLATED LUNG - RELATION TO VASCULAR + ALVEOLAR PRESSURES [J].
WEST, JB ;
DOLLERY, CT ;
NAIMARK, A .
JOURNAL OF APPLIED PHYSIOLOGY, 1964, 19 (04) :713-+
[44]   MORPHOMETRY OF CATS PULMONARY ARTERIAL TREE [J].
YEN, RT ;
ZHUANG, FY ;
FUNG, YC ;
HO, HH ;
TREMER, H ;
SOBIN, SS .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 1984, 106 (02) :131-136
[45]   OPTIMALITY PRINCIPLES IN ARTERIAL BRANCHING [J].
ZAMIR, M .
JOURNAL OF THEORETICAL BIOLOGY, 1976, 62 (01) :227-251
[46]   ANALYSIS OF BLOOD-FLOW IN CATS LUNG WITH DETAILED ANATOMICAL AND ELASTICITY DATA [J].
ZHUANG, FY ;
FUNG, YC ;
YEN, RT .
JOURNAL OF APPLIED PHYSIOLOGY, 1983, 55 (04) :1341-1348