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高机械剪切应力和氧合器膜表面对小儿 ECMO 回路中与血栓形成和出血相关的血液损伤的影响。

Impact of high mechanical shear stress and oxygenator membrane surface on blood damage relevant to thrombosis and bleeding in a pediatric ECMO circuit.

机构信息

Department of Surgery, University of Maryland School of Medicine, Baltimore, MD, USA.

Fischell Department of Bioengineering, A. James Clark School of Engineering, University of Maryland, College Park, MD, USA.

出版信息

Artif Organs. 2020 Jul;44(7):717-726. doi: 10.1111/aor.13646. Epub 2020 Feb 19.

Abstract

The roles of the large membrane surface of the oxygenator and the high mechanical shear stress (HMSS) of the pump in the extracorporeal membrane oxygenation (ECMO) circuit were examined under a pediatric support setting. A clinical centrifugal pump and a pediatric oxygenator were used to construct the ECMO circuit. An identical circuit without the oxygenator was constructed for comparison. Fresh human blood was circulated in the two circuits for 4 hours under the identical pump speed and flow. Blood samples were collected hourly for blood damage assessment, including platelet activation, generation of platelet-derived microparticles (PDMP), losses of key platelet hemostasis receptors (glycoprotein (GP) Ibα (GPIbα) and GPVI), and high molecular weight multimers (HMWM) of von Willebrand factor (VWF) and plasma free hemoglobin (PFH). Platelet adhesion on fibrinogen, VWF, and collagen was further examined. The levels of platelet activation and generation of PDMP and PFH exhibited an increasing trend with circulation time while the expression levels of GPIbα and GPVI receptors on the platelet surface decreased. Correspondingly, the platelets in the blood samples exhibited increased adhesion capacity to fibrinogen and decreased adhesion capacities on VWF and collagen with circulation time. Loss of HMWM of VWF occurred in both circuits. No statistically significant differences were found in all the measured parameters for blood damage and platelet adhesion function between the two circuits. The results indicate that HMSS from the pump played a dominant role in blood damage associated with ECMO and the impact of the large surface of the oxygenator on blood damage was insignificant.

摘要

在儿科支持设置下,研究了体外膜肺氧合(ECMO)回路中氧合器的大膜表面和泵的高机械剪切应力(HMSS)的作用。使用临床离心泵和儿科氧合器构建 ECMO 回路。为了比较,构建了一个没有氧合器的相同回路。在相同的泵速和流量下,将新鲜的人体血液在两个回路中循环 4 小时。每小时采集血液样本进行血液损伤评估,包括血小板活化、血小板衍生微粒(PDMP)的产生、关键血小板止血受体(糖蛋白(GPIbα)和 GPVI)的丧失以及von Willebrand 因子(VWF)的高分子量多聚体(HMWM)和血浆游离血红蛋白(PFH)。进一步检查了血小板在纤维蛋白原、VWF 和胶原蛋白上的黏附。血小板活化和 PDMP 和 PFH 的产生水平随循环时间呈上升趋势,而血小板表面的 GPIbα和 GPVI 受体表达水平下降。相应地,随着循环时间的延长,血液样本中的血小板对纤维蛋白原的黏附能力增加,对 VWF 和胶原蛋白的黏附能力降低。两个回路中均发生了 VWF 的 HMWM 丢失。在两个回路中,血液损伤和血小板黏附功能的所有测量参数均无统计学差异。结果表明,泵的 HMSS 在与 ECMO 相关的血液损伤中起主导作用,而氧合器的大表面对血液损伤的影响并不显著。

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