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逆流血液流动和不均匀灌注如何影响惰性气体的运动。

How countercurrent blood flow and uneven perfusion affect the motion of inert gas.

作者信息

Homer L D, Weathersby P K, Survanshi S

机构信息

Department of Environmental Medicine, Naval Medical Research Institute, Bethesda, Maryland 20814-5055.

出版信息

J Appl Physiol (1985). 1990 Jul;69(1):162-70. doi: 10.1152/jappl.1990.69.1.162.

DOI:10.1152/jappl.1990.69.1.162
PMID:2168363
Abstract

Monte Carlo simulations of the passage of inert gas through muscle tissue reveal that countercurrent gas exchange is more important than heterogeneity of flow in determination of the shape of inert gas washout curves. Semilog plots of inert gas washout are usually curved rather than straight. Two explanations often offered are that countercurrent flow may distort the shape and that uneven perfusion of the tissue gives rise to nonuniform washout. The curvature of the semilog plot may be summarized by the relative dispersion (RD), which is the ratio of the standard deviation of transit times to the mean transit time. For straight semilog plots, RD is 1. Semilog plots of data showing xenon washout from dog tissues are curved and have and RD of approximately 2. We have simulated the transit of gas particles through a vascular bed composed of repeating units of 100 mg of tissue perfused by three small vessels 80 microns in diameter and several levels of branching that direct flow through 190,000 capillaries. Geometric distribution of flow is important. Similar degrees of flow heterogeneity affect the curvature of the washout curve more if regions of heterogeneous flow are widely spaced than if they are close together. Diffusion blunts the effects of heterogeneous flow by mixing particles in high-flow regions with particles in low-flow regions. Because of this mixing, alternating regions of high flow and low flow spaced at intervals of less than 0.5 cm are unlikely explanations for the curved semilog plots.(ABSTRACT TRUNCATED AT 250 WORDS)

摘要

对惰性气体通过肌肉组织过程的蒙特卡洛模拟显示,在决定惰性气体洗脱曲线形状时,逆流气体交换比血流异质性更为重要。惰性气体洗脱的半对数图通常是弯曲的而非直线。常给出的两种解释是,逆流可能会扭曲曲线形状,且组织灌注不均会导致洗脱不均匀。半对数图的曲率可用相对离散度(RD)来概括,它是通过时间标准差与平均通过时间的比值。对于直线型半对数图,RD为1。显示氙从犬组织洗脱的数据的半对数图是弯曲的,RD约为2。我们模拟了气体颗粒通过由100毫克组织的重复单元组成的血管床的过程,该血管床由三条直径80微米的小血管灌注,并经过多级分支,引导血流通过190,000根毛细血管。血流的几何分布很重要。如果血流不均匀区域间隔较宽,相似程度的血流异质性对洗脱曲线曲率的影响比间隔较近时更大。扩散通过将高血流区域的颗粒与低血流区域的颗粒混合,减弱了血流异质性的影响。由于这种混合,间隔小于0.5厘米的高血流和低血流交替区域不太可能是弯曲半对数图的原因。(摘要截短于250字)

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