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用于人工肺的血浆抗性中空纤维膜的评估。

Evaluation of plasma resistant hollow fiber membranes for artificial lungs.

作者信息

Eash Heide J, Jones Heather M, Hattler Brack G, Federspiel William J

机构信息

University of Pittsburgh, McGowan Institute for Regenerative Medicine, Pittsburgh, PA 15203, USA.

出版信息

ASAIO J. 2004 Sep-Oct;50(5):491-7. doi: 10.1097/01.mat.0000138078.04558.fe.

Abstract

Hollow fiber membranes (HFMs) used in artificial lungs (oxygenators) undergo plasma leakage (or wetting) in which blood plasma slowly fills the pores of the fiber wall, plasma leaks into gas pathways, and overall gas exchange decreases. To overcome this problem plasma resistant fibers are being developed that are skinned asymmetric or composite symmetric versions of microporous oxygenator fibers. This report evaluates several candidate plasma resistant HFMs in terms of their gas permeance and plasma resistance as measured in a surfactant wet out test. Five candidate fibers were compared with each other and with a control fiber. CO2 and O2 gas permeance (in ml/s/cm2/cm Hg) in the plasma resistant fibers ranged from 3.15E-04 to 1.71E-03 and 3.40E-04 to 1.08E-03, respectively, compared with 1.62E-02 and 1.77E-02 for the control fiber. Maximum dye bleed through for the plasma resistant fibers in the forced wet out test were significantly less than for the control fiber. CO2 gas permeance of a plasma resistant fiber imposes the greatest constraint upon artificial lung design for sufficient gas exchange. However, our results suggest sufficient plasma resistance can be achieved using special skinned and composite HFMs while maintaining an acceptable CO2 gas permeance for a broad range of artificial lung applications.

摘要

用于人工肺(氧合器)的中空纤维膜(HFM)会发生血浆渗漏(或浸湿),即血浆会缓慢填充纤维壁的孔隙,血浆渗入气体通道,导致整体气体交换减少。为克服这一问题,正在研发抗血浆纤维,这些纤维是微孔氧合器纤维的不对称皮膜或复合对称版本。本报告根据在表面活性剂浸湿试验中测得的透气率和抗血浆性能,对几种抗血浆HFM候选材料进行了评估。将五种候选纤维相互比较,并与一种对照纤维进行比较。抗血浆纤维中二氧化碳和氧气的透气率(单位为ml/s/cm2/cm Hg)分别在3.15E-04至1.71E-03和3.40E-04至1.08E-03之间,而对照纤维的这两个数值分别为1.62E-02和1.77E-02。在强制浸湿试验中,抗血浆纤维的最大染料渗出量明显低于对照纤维。抗血浆纤维的二氧化碳透气率对实现足够气体交换的人工肺设计构成了最大限制。然而,我们的结果表明,使用特殊的皮膜和复合HFM可以实现足够的抗血浆性能,同时在广泛的人工肺应用中保持可接受的二氧化碳透气率。

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