Electron Microscopic Confirmation of Anisotropic Pore Characteristics for ECMO Membranes Theoretically Validating the Risk of SARS-CoV-2 Permeation
Abstract
:1. Introduction
2. Material and Methods
2.1. Hollow Fiber Membrane for Extracorporeal Membrane Oxygenator
2.2. Observation of Three-Dimensional Tortuous Pore Using Scanning Probe Microscope (SPM) System
2.3. Observation of Three-Dimensional Tortuous Pores Using Field Emission Scanning Electron Microscope (FE-SEM)
2.4. Validation of SARS-CoV-2 Permeability Using the Steric Exclusion Model and Hindered Diffusion Model
3. Results
3.1. SPM Observations of Tortuous Pore Structures of ECMO Membranes
3.2. FE-SEM Observations of Tortuous Pore Structures of ECMO Membranes
3.3. Measurement of Pore Diameter and Pore Diameter Distribution and Evaluation of SARS-CoV-2 Permeability
4. Discussion
4.1. ECMO Infection and Usefulness of Theoretically Validating SARS-CoV-2 Permeation through Membrane
4.2. Optimal Design of Asymmetrical Pore Structure of ECMO Membrane
4.3. Limitations of Theoretically Validating SARS-CoV-2 Permeation Based on the Membrane Transport Model
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
Abbreviations
a | Molecular radius, Solute radius (m) |
C | Concentration (g/m3) |
Concentration in a pore (mg/m3) | |
solute concentration in the pore at the inlet of the pore related with the bulk solute concentration (mg/m3) | |
DAB | Diffusion coefficient in a homogeneous fluid, usually used for water at 37 °C (m2/s) |
Diffusion coefficient in membrane (m2/s) | |
Dpasma | Diffusion coefficient in plasma (m2/s) |
Diffusion coefficient in a pore (m2 / s) | |
K | Partition coefficient (−) |
Membrane thickness (m) | |
Mass transfer flux in a pore (g/m2 s) | |
NA | Avogadoro’s number (6.02 × 1023 mol−1) |
R | Universal gas constant |
T | Absolute temperature (K) |
r | Pore radius (m) |
Greek letters | |
µ | viscosity (cP) (Pa s) (g/(cm s)) |
ρ | density (g/cm3) |
τ | membrane tortuosity (−) |
Hindered diffusion parameter (−) | |
Subscripts/superscripts | |
A | Solute |
Local value at | |
Local value at | |
plasma | Plasma |
pore | Pore |
bulk | Refers to the value in a bulk solution |
x | Local value at position x (m) |
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Sample | oxia® ACF Sample A | MERA NHP® Exelung TPC HPO-23WH-C Sample B | BIOCUBE® 6000 Sample C |
---|---|---|---|
Manufacturer (Manufacturer of membrane) | JMS Co., Ltd., Hiroshima, Japan (3M Co., Ltd., USA) | SENKO MEDICAL INSTRUMENT Mfg. CO., Ltd., Tokyo, Japan | Nipro Co., Ltd., Tokyo, Japan (DIC Co., Ltd., Tokyo, Japan) |
Material of hollow fiber membrane | Polypropylene (PP) | Polypropylene (PP), silicone | Polymethylpentene (PMP) |
Antithrombogenic material coating for blood flow channel | Poly (2-methacryloyloxyethyl phosphoryl choline) (PMPC) | Heparin compound | Heparin |
Inner diameter of lumen [µm] (n = 30) | 238 ± 5 | 246 ± 3 | 176 ± 6 |
Membrane thickness [µm] (n = 30) | 35 ± 1 | 27 ± 1 | 30 ± 2 |
Air permeability (1) [s] | 35.1 ± 1.4 | - | - |
Pore structure | asymmetric pore structure | asymmetric pore structure, the outer surface of the membrane is coated with thin silicone layer (thickness 0.2 µm) | asymmetric pore structure |
Sterilization method | EOG | EOG | EOG |
Insurance coverage classification (in Japan) | extracorporeal membrane oxygenator; ECMO (2) | extracorporeal membrane oxygenator; ECMO (2) Cardiac ECMO Respiratory ECMO (3) | extracorporeal membrane oxygenator; ECMO (2) Cardiac ECMO Respiratory ECMO (3) |
Sample | Oxia® ACF Sample A | MERA NHP® Exelung TPC HPO-23WH-C Sample B | BIOCUBE® 6000 Sample C |
---|---|---|---|
Tortuous pore diameter of inner surface (nm) n = 50, AVG. ± STD. upper: major axis lower: minor axis | 152 ± 50 | 166 ± 51 | 78 ± 27 |
59 ± 25 | 53 ± 15 | 42 ± 13 | |
Tortuous pore diameter of outer surface (nm) n = 50, AVG. ± STD. upper: major axis lower: minor axis | 122 ± 51 | 86 ± 27 | 77 ± 25 |
44 ± 14 | 40 ± 18 (n = 5) | 52 ± 15 | |
Partition coefficient (K) of SARS-CoV-2 [-] SARS-CoV-2 diameter upper: 50 nm lower: 80 nm | 0.35 | 0.18 | 0.12 |
0.12 | 0.005 | 0.002 | |
Intramembrane diffusive coefficient (Dm) of SARS-CoV-2 (1) (2) (m2/s) SARS-CoV-2 diameter upper: 50 nm lower: 80 nm | 7.2 × 10−13 | 1.6× 10−13 | 8.9 × 10−14 |
5.5 × 10−14 | 1.5× 10−15 | 8.4 × 10−17 |
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Fukuda, M.; Furuya, T.; Sadano, K.; Tokumine, A.; Mori, T.; Saomoto, H.; Sakai, K. Electron Microscopic Confirmation of Anisotropic Pore Characteristics for ECMO Membranes Theoretically Validating the Risk of SARS-CoV-2 Permeation. Membranes 2021, 11, 529. https://doi.org/10.3390/membranes11070529
Fukuda M, Furuya T, Sadano K, Tokumine A, Mori T, Saomoto H, Sakai K. Electron Microscopic Confirmation of Anisotropic Pore Characteristics for ECMO Membranes Theoretically Validating the Risk of SARS-CoV-2 Permeation. Membranes. 2021; 11(7):529. https://doi.org/10.3390/membranes11070529
Chicago/Turabian StyleFukuda, Makoto, Tomoya Furuya, Kazunori Sadano, Asako Tokumine, Tomohiro Mori, Hitoshi Saomoto, and Kiyotaka Sakai. 2021. "Electron Microscopic Confirmation of Anisotropic Pore Characteristics for ECMO Membranes Theoretically Validating the Risk of SARS-CoV-2 Permeation" Membranes 11, no. 7: 529. https://doi.org/10.3390/membranes11070529
APA StyleFukuda, M., Furuya, T., Sadano, K., Tokumine, A., Mori, T., Saomoto, H., & Sakai, K. (2021). Electron Microscopic Confirmation of Anisotropic Pore Characteristics for ECMO Membranes Theoretically Validating the Risk of SARS-CoV-2 Permeation. Membranes, 11(7), 529. https://doi.org/10.3390/membranes11070529