Electron Microscopic Confirmation of Anisotropic Pore Characteristics for ECMO Membranes Theoretically Validating the Risk of SARS-CoV-2 Permeation

Author:

Fukuda MakotoORCID,Furuya Tomoya,Sadano Kazunori,Tokumine Asako,Mori TomohiroORCID,Saomoto Hitoshi,Sakai Kiyotaka

Abstract

The objective of this study is to clarify the pore structure of ECMO membranes by using our approach and theoretically validate the risk of SARS-CoV-2 permeation. There has not been any direct evidence for SARS-CoV-2 leakage through the membrane in ECMO support for critically ill COVID-19 patients. The precise pore structure of recent membranes was elucidated by direct microscopic observation for the first time. The three types of membranes, polypropylene, polypropylene coated with thin silicone layer, and polymethylpentene (PMP), have unique pore structures, and the pore structures on the inner and outer surfaces of the membranes are completely different anisotropic structures. From these data, the partition coefficients and intramembrane diffusion coefficients of SARS-CoV-2 were quantified using the membrane transport model. Therefore, SARS-CoV-2 may permeate the membrane wall with the plasma filtration flow or wet lung. The risk of SARS-CoV-2 permeation is completely different due to each anisotropic pore structure. We theoretically demonstrate that SARS-CoV-2 is highly likely to permeate the membrane transporting from the patient’s blood to the gas side, and may diffuse from the gas side outlet port of ECMO leading to the extra-circulatory spread of the SARS-CoV-2 (ECMO infection). Development of a new generation of nanoscale membrane confirmation is proposed for next-generation extracorporeal membrane oxygenator and system with long-term durability is envisaged.

Publisher

MDPI AG

Subject

Filtration and Separation,Chemical Engineering (miscellaneous),Process Chemistry and Technology

Reference33 articles.

1. Japanese ECMOnet for COVID-19, Japanese Association for Acute Medicine, the Japanese Society of Intensive Care Medicine, Japanese Society of Respiratory Care Medicine, The Japanese Association for Infectious Diseases, The Japanese Respiratory Society, Japanese Society of Percutaneous Cardio-Pulmonary Support/Extracorporeal Membrane Oxygenation https://www.ecmoneet.jp

2. An Assessment of Aerosolization via Membranous Oxygenator and Coagulopathy in COVID-19. ELSO Webinar, 2020.3.30 https://ecmoedblog.files.wordpress.com/2020/03/elso-webinar-slides-keibun-liu.pdf

3. An approach to the microporous hollow fiber for the ECMO oxygenator—Micopore characterization of the gas exchange performance, plasma leakage, and hydrophilization of the inner surface of fibers;Hagiwara;Jpn. J. Artif. Organs,1992

4. Is condensation the cause of plasma leakage in microporous hollow fiber membrane oxygenators

5. Plasma Leakage of Oxygenators in ECMO Depends on the Type of Oxygenator and on Patient Variables

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