利用横截面离子研磨法表征用于长期 ECMO 的毛细管膜的各向异性孔隙结构和致密选择层。

IF 1.1 4区 医学 Q4 ENGINEERING, BIOMEDICAL Journal of Artificial Organs Pub Date : 2024-08-20 DOI:10.1007/s10047-024-01461-z
Makoto Fukuda, Kazunori Sadano, Tomoki Maeda, Eri Murata, Naoyuki Miyashita, Tsutomu Tanaka, Tomohiro Mori, Akane Saito, Kiyotaka Sakai
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引用次数: 0

摘要

自 2020-2023 年 COVID-19 大流行以来,体外膜氧合器(ECMO)在全球范围内引起了广泛关注。预计具有长期耐久性的 ECMO 将投入实际使用,以便为下一次新出现的传染病做好准备,并促进新型医疗设备的生产。聚丙烯(PP)和聚甲基戊烯(PMP)毛细管膜是目前 ECMO 气体交换膜的主流。据报道,COVID-19 相关急性低氧血症呼吸衰竭的 ECMO 支持天数平均为 14 或 24 天。有必要改善膜的对立功能,如促进氧气和二氧化碳的渗透,抑制水蒸气或等离子体的渗透,以便为长期使用提供足够的耐久性。为此,精确控制毛细管膜整个横截面孔隙结构的各向异性和功能意义重大。在本研究中,我们重点采用横截面离子研磨(CSIM)方法,以精确阐明 ECMO 用毛细管膜整个横截面的孔隙结构,因为在制备多孔毛细管膜横截面样品时,对多孔结构施加的物理应力较小。我们尝试使用 CSIM 方法观察市售 PMP 膜的横截面。结果,我们成功制备出了毛细管膜的精细平面横截面样品。定量阐明了横截面的孔结构和各向异性程度。这项研究的成果和方法正被应用于下一代气体交换膜的开发。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Characterization of anisotropic pore structure and dense selective layer of capillary membranes for long-term ECMO by cross-sectional ion-milling method.

Since the COVID-19 pandemic of 2020-2023, extracorporeal membrane oxygenator (ECMO) has attracted considerable attention worldwide. It is expected that ECMO with long-term durability is put into practical use in order to prepare for next emerging infectious diseases and to facilitate manufacturing for novel medical devices. Polypropylene (PP) and polymethylpentene (PMP) capillary membranes are currently the mainstream for gas exchange membrane for ECMO. ECMO support days for COVID-19-related acute hypoxemic respiratory failure have been reported to be on average for 14 or 24 days. It is necessary to improve opposing functions such that promoting the permeation of oxygen and carbon dioxide and inhibiting the permeation of water vapor or plasma to develop sufficient durability for long-term use. For this purpose, accurately controlling the anisotropy of the pore structure of the entire cross section and functions of capillary membrane is significant. In this study, we focused on the cross-sectional ion-milling (CSIM) method, to precisely clarify the pore structure of the entire cross section of capillary membrane for ECMO, because there is less physical stress on the porous structure applied during the preparation of cross-sectional samples of porous capillary membranes. We attempted to observe the cross sections of commercially available PMP membranes using the CSIM method. As a result, we succeeded in fabricating fine-scale flat cross-sectional samples of PMP capillary membranes. The pore structures and the degree of anisotropy of the cross sections are quantitatively clarified. The achievements and the approaches of this study are being applied to the development of next-generation gas exchange membranes.

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来源期刊
Journal of Artificial Organs
Journal of Artificial Organs 医学-工程:生物医学
CiteScore
2.80
自引率
15.40%
发文量
68
审稿时长
6-12 weeks
期刊介绍: The aim of the Journal of Artificial Organs is to introduce to colleagues worldwide a broad spectrum of important new achievements in the field of artificial organs, ranging from fundamental research to clinical applications. The scope of the Journal of Artificial Organs encompasses but is not restricted to blood purification, cardiovascular intervention, biomaterials, and artificial metabolic organs. Additionally, the journal will cover technical and industrial innovations. Membership in the Japanese Society for Artificial Organs is not a prerequisite for submission.
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