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成人搏动性体外膜肺氧合系统的体外血流动力学评估

In Vitro Hemodynamic Evaluation of an Adult Pulsatile Extracorporeal Membrane Oxygenation System.

作者信息

Wang Shigang, Moroi Morgan, Brehm Christoph E, Kunselman Allen R, Ündar Akif

机构信息

Department of Pediatrics, Penn State Health Pediatric Cardiovascular Research Center, Penn State College of Medicine, Penn State Health Children's Hospital, Hershey, PA, USA.

Heart and Vascular Institute Critical Care Unit and Adult ECMO Program, Penn State Milton S. Hershey Medical Center, Penn State College of Medicine, Penn State Health Children's Hospital, Hershey, PA, USA.

出版信息

Artif Organs. 2018 Sep;42(9):E234-E245. doi: 10.1111/aor.13156. Epub 2018 May 17.

Abstract

The objective of this study was to evaluate a pulsatile extracorporeal membrane oxygenation (ECMO) system in terms of hemodynamic energy generation and transmission under various pulsatile amplitudes, flow rates, and pseudopatient pressures in a simulated adult ECMO circuit. Surplus hemodynamic energy (SHE), a measure of the quality of pulsatility, was used to quantify pulsatile flow. The circuit consisted of an i-cor diagonal pump, an adult XLung oxygenator, a 21 Fr Medtronic Biomedicus femoral arterial cannula, a 23/25 Fr Sorin RAP femoral venous cannula, and 3/8 in ID tubing for both arterial and venous lines. The circuit was primed with lactated Ringer's solution and then packed red blood cells (hematocrit 37%). Trials were conducted at 36°C with flow rates of 2-5 L/min (1 L/min increments) under nonpulsatile and pulsatile mode with pulsatile amplitudes of 1000-5000 rpm (1000 rpm increments). The pseudopatient pressure was maintained at 40-100 mm Hg (20 mm Hg increments). Real-time pressure and flow data were recorded for analysis using a custom-made data acquisition system. There was no SHE generated by the pump under nonpulsatile mode. Under pulsatile mode, SHE levels increased with increasing pulsatile amplitude and pseudopatient pressure (P < 0.01) but decreased with increasing flow rate. SHE levels were significantly higher at flow rates of 2-4 L/min. In addition, the XLung oxygenator had acceptable pressure drops (36.1-104.9 mm Hg) and percentages of total hemodynamic energy loss (19.6-43.9%) during all trials. The novel pulsatile ECMO system can create nonpulsatile and pulsatile flow in an adult ECMO model. However, pulsatility gradually weakened with increasing flow rates. Pulsatile amplitude settings were found to have a great impact on pulsatility.

摘要

本研究的目的是在模拟成人体外膜肺氧合(ECMO)回路中,评估一种搏动性体外膜肺氧合系统在不同搏动幅度、流速和模拟患者压力下的血流动力学能量产生和传输情况。剩余血流动力学能量(SHE)是搏动质量的一种度量,用于量化搏动性血流。该回路由一个i-cor对角泵、一个成人型XLung氧合器、一根21 Fr美敦力Biomedicus股动脉插管、一根23/25 Fr索林RAP股静脉插管以及用于动脉和静脉管路的3/8英寸内径的 tubing 组成。回路先用乳酸林格氏液预充,然后加入浓缩红细胞(血细胞比容37%)。试验在36°C下进行,流速为2 - 5 L/分钟(以1 L/分钟递增),分别处于非搏动模式和搏动模式,搏动幅度为1000 - 5000转/分钟(以1000转/分钟递增)。模拟患者压力维持在40 - 100毫米汞柱(以20毫米汞柱递增)。使用定制的数据采集系统记录实时压力和流量数据以进行分析。在非搏动模式下,泵未产生SHE。在搏动模式下,SHE水平随着搏动幅度和模拟患者压力的增加而升高(P < 0.01),但随着流速的增加而降低。在流速为2 - 4 L/分钟时,SHE水平显著更高。此外,在所有试验中,XLung氧合器的压力降(36.1 - 10

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