Cargando…

Multilayer Scaling of a Biomimetic Microfluidic Oxygenator

Extracorporeal membrane oxygenation (ECMO) has been advancing rapidly due to a combination of rising rates of acute and chronic lung diseases as well as significant improvements in the safety and efficacy of this therapeutic modality. However, the complexity of the ECMO blood circuit, and challenges...

Descripción completa

Detalles Bibliográficos
Autores principales: Vedula, Else M., Isenberg, Brett C., Santos, Jose, Lai, WeiXuan, Lewis, Diana J., Sutherland, David, Roberts, Teryn R., Harea, George T., Wells, Christian, Teece, Bryan, Urban, Joseph, Risoleo, Thomas, Solt, Derek, Leazer, Sahar, Chung, Kevin, Sukavaneshvar, Sivaprasad, Batchinsky, Andriy I., Borenstein, Jeffrey T.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Lippincott Williams & Wilkins 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9521578/
https://www.ncbi.nlm.nih.gov/pubmed/36194101
http://dx.doi.org/10.1097/MAT.0000000000001647
_version_ 1784799871456247808
author Vedula, Else M.
Isenberg, Brett C.
Santos, Jose
Lai, WeiXuan
Lewis, Diana J.
Sutherland, David
Roberts, Teryn R.
Harea, George T.
Wells, Christian
Teece, Bryan
Urban, Joseph
Risoleo, Thomas
Solt, Derek
Leazer, Sahar
Chung, Kevin
Sukavaneshvar, Sivaprasad
Batchinsky, Andriy I.
Borenstein, Jeffrey T.
author_facet Vedula, Else M.
Isenberg, Brett C.
Santos, Jose
Lai, WeiXuan
Lewis, Diana J.
Sutherland, David
Roberts, Teryn R.
Harea, George T.
Wells, Christian
Teece, Bryan
Urban, Joseph
Risoleo, Thomas
Solt, Derek
Leazer, Sahar
Chung, Kevin
Sukavaneshvar, Sivaprasad
Batchinsky, Andriy I.
Borenstein, Jeffrey T.
author_sort Vedula, Else M.
collection PubMed
description Extracorporeal membrane oxygenation (ECMO) has been advancing rapidly due to a combination of rising rates of acute and chronic lung diseases as well as significant improvements in the safety and efficacy of this therapeutic modality. However, the complexity of the ECMO blood circuit, and challenges with regard to clotting and bleeding, remain as barriers to further expansion of the technology. Recent advances in microfluidic fabrication techniques, devices, and systems present an opportunity to develop new solutions stemming from the ability to precisely maintain critical dimensions such as gas transfer membrane thickness and blood channel geometries, and to control levels of fluid shear within narrow ranges throughout the cartridge. Here, we present a physiologically inspired multilayer microfluidic oxygenator device that mimics physiologic blood flow patterns not only within individual layers but throughout a stacked device. Multiple layers of this microchannel device are integrated with a three-dimensional physiologically inspired distribution manifold that ensures smooth flow throughout the entire stacked device, including the critical entry and exit regions. We then demonstrate blood flows up to 200 ml/min in a multilayer device, with oxygen transfer rates capable of saturating venous blood, the highest of any microfluidic oxygenator, and a maximum blood flow rate of 480 ml/min in an eight-layer device, higher than any yet reported in a microfluidic device. Hemocompatibility and large animal studies utilizing these prototype devices are planned. Supplemental Visual Abstract, http://links.lww.com/ASAIO/A769.
format Online
Article
Text
id pubmed-9521578
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Lippincott Williams & Wilkins
record_format MEDLINE/PubMed
spelling pubmed-95215782022-10-03 Multilayer Scaling of a Biomimetic Microfluidic Oxygenator Vedula, Else M. Isenberg, Brett C. Santos, Jose Lai, WeiXuan Lewis, Diana J. Sutherland, David Roberts, Teryn R. Harea, George T. Wells, Christian Teece, Bryan Urban, Joseph Risoleo, Thomas Solt, Derek Leazer, Sahar Chung, Kevin Sukavaneshvar, Sivaprasad Batchinsky, Andriy I. Borenstein, Jeffrey T. ASAIO J Pulmonary Extracorporeal membrane oxygenation (ECMO) has been advancing rapidly due to a combination of rising rates of acute and chronic lung diseases as well as significant improvements in the safety and efficacy of this therapeutic modality. However, the complexity of the ECMO blood circuit, and challenges with regard to clotting and bleeding, remain as barriers to further expansion of the technology. Recent advances in microfluidic fabrication techniques, devices, and systems present an opportunity to develop new solutions stemming from the ability to precisely maintain critical dimensions such as gas transfer membrane thickness and blood channel geometries, and to control levels of fluid shear within narrow ranges throughout the cartridge. Here, we present a physiologically inspired multilayer microfluidic oxygenator device that mimics physiologic blood flow patterns not only within individual layers but throughout a stacked device. Multiple layers of this microchannel device are integrated with a three-dimensional physiologically inspired distribution manifold that ensures smooth flow throughout the entire stacked device, including the critical entry and exit regions. We then demonstrate blood flows up to 200 ml/min in a multilayer device, with oxygen transfer rates capable of saturating venous blood, the highest of any microfluidic oxygenator, and a maximum blood flow rate of 480 ml/min in an eight-layer device, higher than any yet reported in a microfluidic device. Hemocompatibility and large animal studies utilizing these prototype devices are planned. Supplemental Visual Abstract, http://links.lww.com/ASAIO/A769. Lippincott Williams & Wilkins 2022-01-12 2022-10 /pmc/articles/PMC9521578/ /pubmed/36194101 http://dx.doi.org/10.1097/MAT.0000000000001647 Text en Copyright © 2022 The Author(s). Published by Wolters Kluwer Health, Inc. on behalf of the ASAIO. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution-Non Commercial-No Derivatives License 4.0 (CCBY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) , where it is permissible to download and share the work provided it is properly cited. The work cannot be changed in any way or used commercially without permission from the journal.
spellingShingle Pulmonary
Vedula, Else M.
Isenberg, Brett C.
Santos, Jose
Lai, WeiXuan
Lewis, Diana J.
Sutherland, David
Roberts, Teryn R.
Harea, George T.
Wells, Christian
Teece, Bryan
Urban, Joseph
Risoleo, Thomas
Solt, Derek
Leazer, Sahar
Chung, Kevin
Sukavaneshvar, Sivaprasad
Batchinsky, Andriy I.
Borenstein, Jeffrey T.
Multilayer Scaling of a Biomimetic Microfluidic Oxygenator
title Multilayer Scaling of a Biomimetic Microfluidic Oxygenator
title_full Multilayer Scaling of a Biomimetic Microfluidic Oxygenator
title_fullStr Multilayer Scaling of a Biomimetic Microfluidic Oxygenator
title_full_unstemmed Multilayer Scaling of a Biomimetic Microfluidic Oxygenator
title_short Multilayer Scaling of a Biomimetic Microfluidic Oxygenator
title_sort multilayer scaling of a biomimetic microfluidic oxygenator
topic Pulmonary
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9521578/
https://www.ncbi.nlm.nih.gov/pubmed/36194101
http://dx.doi.org/10.1097/MAT.0000000000001647
work_keys_str_mv AT vedulaelsem multilayerscalingofabiomimeticmicrofluidicoxygenator
AT isenbergbrettc multilayerscalingofabiomimeticmicrofluidicoxygenator
AT santosjose multilayerscalingofabiomimeticmicrofluidicoxygenator
AT laiweixuan multilayerscalingofabiomimeticmicrofluidicoxygenator
AT lewisdianaj multilayerscalingofabiomimeticmicrofluidicoxygenator
AT sutherlanddavid multilayerscalingofabiomimeticmicrofluidicoxygenator
AT robertsterynr multilayerscalingofabiomimeticmicrofluidicoxygenator
AT hareageorget multilayerscalingofabiomimeticmicrofluidicoxygenator
AT wellschristian multilayerscalingofabiomimeticmicrofluidicoxygenator
AT teecebryan multilayerscalingofabiomimeticmicrofluidicoxygenator
AT urbanjoseph multilayerscalingofabiomimeticmicrofluidicoxygenator
AT risoleothomas multilayerscalingofabiomimeticmicrofluidicoxygenator
AT soltderek multilayerscalingofabiomimeticmicrofluidicoxygenator
AT leazersahar multilayerscalingofabiomimeticmicrofluidicoxygenator
AT chungkevin multilayerscalingofabiomimeticmicrofluidicoxygenator
AT sukavaneshvarsivaprasad multilayerscalingofabiomimeticmicrofluidicoxygenator
AT batchinskyandriyi multilayerscalingofabiomimeticmicrofluidicoxygenator
AT borensteinjeffreyt multilayerscalingofabiomimeticmicrofluidicoxygenator