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血管床的设计原则。

Design principles of vascular beds.

作者信息

Pries A R, Secomb T W, Gaehtgens P

机构信息

Freie Universität Berlin, Department of Physiology, Germany.

出版信息

Circ Res. 1995 Nov;77(5):1017-23. doi: 10.1161/01.res.77.5.1017.

Abstract

Hemodynamic parameters were determined in each vessel segment of six complete microvascular networks in the rat mesentery by using a combination of experimental measurements and theoretical stimulations. For a total number of 2592 segments, a strong unified dependence of wall shear stress on intravascular pressure for arterioles, capillaries, and venules was obtained. All three types of segments exhibit an essentially identical variation of shear stress from high to low values (from approximately 100 to 10 dyne/cm2) as intravascular pressure falls from 70 to 15 mm Hg. On the basis of these observations, it is proposed that vascular beds grow and adapt so as to maintain the shear stress in each vessel at a level that depends on local transmural pressure. In contrast to Murray's classic 'minimum-cost' hypothesis, which implies uniformity of wall shear rate throughout the vasculature, the proposed design principle provides an explanation for the functionally important arteriovenous asymmetry of wall shear rates and flow resistance in the circulation.

摘要

通过结合实验测量和理论模拟,确定了大鼠肠系膜中六个完整微血管网络各血管段的血流动力学参数。对于总共2592个血管段,获得了小动脉、毛细血管和小静脉壁剪切应力对血管内压力的强烈统一依赖性。随着血管内压力从70毫米汞柱降至15毫米汞柱,所有这三种类型的血管段的剪切应力都呈现出从高值到低值(从约100到10达因/平方厘米)的基本相同变化。基于这些观察结果,有人提出血管床生长并适应,以便将每个血管中的剪切应力维持在取决于局部跨壁压力的水平。与默里经典的“最小成本”假说相反,后者意味着整个脉管系统壁剪切速率的均匀性,所提出的设计原则为循环中壁剪切速率和流动阻力在功能上重要的动静脉不对称性提供了解释。

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