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一种用于模拟真实肺泡平台斜率的人腺泡结构。

A human acinar structure for simulation of realistic alveolar plateau slopes.

作者信息

Dutrieue B, Vanholsbeeck F, Verbanck S, Paiva M

机构信息

Biomedical Physics Laboratory, Université Libre de Bruxelles, 1070 Brussels, Belgium.

出版信息

J Appl Physiol (1985). 2000 Nov;89(5):1859-67. doi: 10.1152/jappl.2000.89.5.1859.

Abstract

We simulated the intra-acinar contribution to phase III slope (S(acin)) for gases of differing diffusivities (He and SF(6)) by solving equations of diffusive and convective gas transport in multi-branch-point models (MBPM) of the human acinus. We first conducted a sensitivity study of S(acin) to asymmetry and its variability in successive generations. S(acin) increases were greatest when asymmetry and variability of asymmetry were increased at the level of the respiratory bronchioles (generations 17-18) for He and at the level of the alveolar ducts (generations 20-21) for SF(6), corresponding to the location of their respective diffusion fronts. On the basis of this sensitivity study and in keeping with reported acinar morphometry, we built a MBPM that actually reproduced experimental S(acin) values obtained in normal subjects for He, N(2), and SF(6). Ten variants of such a MBPM were constructed to estimate intrinsic S(acin) variability owing to peripheral lung structure. The realistic simulation of S(acin) in the normal lung and the understanding of how asymmetry affects S(acin) for different diffusivity gases make S(acin) a powerful tool to detect structural alterations at different depths in the lung periphery.

摘要

我们通过求解人腺泡多分支点模型(MBPM)中气体扩散和对流传输方程,模拟了不同扩散率气体(氦气和六氟化硫)对III期斜率(S(acin))的腺泡内贡献。我们首先对S(acin)对不对称性及其在连续几代中的变异性进行了敏感性研究。对于氦气,当呼吸细支气管水平(第17 - 18代)的不对称性和不对称性变异性增加时,S(acin)增加最大;对于六氟化硫,当肺泡管水平(第20 - 21代)的不对称性和不对称性变异性增加时,S(acin)增加最大,这与它们各自扩散前沿的位置相对应。基于此敏感性研究并结合已报道的腺泡形态测量学,我们构建了一个MBPM,该模型实际再现了正常受试者中氦气、氮气和六氟化硫的实验S(acin)值。构建了这种MBPM的十个变体,以估计由于外周肺结构导致的内在S(acin)变异性。在正常肺中对S(acin)进行真实模拟以及理解不对称性如何影响不同扩散率气体的S(acin),使得S(acin)成为检测肺外周不同深度结构改变的有力工具。

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