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Zhang A, Tharwani K, Wang J, Seilo GK, Atie MA, Potkay JA. Roll-to-roll manufacturing of large surface area PDMS devices, and application to a microfluidic artificial lung. LAB ON A CHIP 2024; 24:4357-4370. [PMID: 39148312 PMCID: PMC11327552 DOI: 10.1039/d4lc00339j] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Received: 04/20/2024] [Accepted: 07/16/2024] [Indexed: 08/17/2024]
Abstract
The ability to cost-effectively produce large surface area microfluidic devices would bring many small-scale technologies such as microfluidic artificial lungs (μALs) from the realm of research to clinical and commercial applications. However, efforts to scale up these devices, such as by stacking multiple flat μALs have been labor intensive and resulted in bulky devices. Here, we report an automated manufacturing system, and a series of cylindrical multi-layer lungs manufactured with the system and tested for fluidic fidelity and function. A roll-to-roll (R2R) system to engrave multiple-layer devices was assembled. Unlike typical applications of R2R, the rolling process is synchronized to achieve consistent radial positioning. This allows the fluidics in the final device to be accessed without being unwrapped. To demonstrate the capabilities of the R2R manufacturing system, this method was used to manufacture multi-layer μALs. Gas and blood are engraved in alternating layers and routed orthogonally to each other. The proximity of gas and blood separated by gas permeable PDMS permits CO2 and O2 exchange via diffusion. After manufacturing, they were evaluated using water for pressure drop and CO2 gas exchange. The best performing device was tested with fresh whole bovine blood for O2 exchange. Three μALs were successfully manufactured and passed leak testing. The top performing device had 15 alternating blood and gas layers. It oxygenated blood from 70% saturation to 95% saturation at a blood flow of 3 mL min-1 and blood side pressure drop of 234 mmHg. This new roll-to-roll manufacturing system is suitable for the automated construction of multi-layer microfluidic devices that are difficult to manufacture by conventional means. With some upgrades and improvements, this technology should allow for the automatic creation of large surface area microfluidic devices that can be employed for various applications including large-scale membrane gas exchange such as clinical-scale microfluidic artificial lungs.
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Affiliation(s)
- Andrew Zhang
- ECLS Laboratory, Department of Surgery, University of Michigan, Ann Arbor, MI 48109, USA.
- Ann Arbor Veteran Affairs Healthcare System, Ann Arbor, MI 48105, USA
| | - Kartik Tharwani
- ECLS Laboratory, Department of Surgery, University of Michigan, Ann Arbor, MI 48109, USA.
| | - Jennifer Wang
- ECLS Laboratory, Department of Surgery, University of Michigan, Ann Arbor, MI 48109, USA.
| | - Gabriele K Seilo
- ECLS Laboratory, Department of Surgery, University of Michigan, Ann Arbor, MI 48109, USA.
| | - Michael A Atie
- ECLS Laboratory, Department of Surgery, University of Michigan, Ann Arbor, MI 48109, USA.
- Ann Arbor Veteran Affairs Healthcare System, Ann Arbor, MI 48105, USA
| | - Joseph A Potkay
- ECLS Laboratory, Department of Surgery, University of Michigan, Ann Arbor, MI 48109, USA.
- Ann Arbor Veteran Affairs Healthcare System, Ann Arbor, MI 48105, USA
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Calzuola ST, Newman G, Feaugas T, Perrault CM, Blondé JB, Roy E, Porrini C, Stojanovic GM, Vidic J. Membrane-based microfluidic systems for medical and biological applications. LAB ON A CHIP 2024; 24:3579-3603. [PMID: 38954466 DOI: 10.1039/d4lc00251b] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 07/04/2024]
Abstract
Microfluidic devices with integrated membranes that enable control of mass transport in constrained environments have shown considerable growth over the last decade. Membranes are a key component in several industrial processes such as chemical, pharmaceutical, biotechnological, food, and metallurgy separation processes as well as waste management applications, allowing for modular and compact systems. Moreover, the miniaturization of a process through microfluidic devices leads to process intensification together with reagents, waste and cost reduction, and energy and space savings. The combination of membrane technology and microfluidic devices allows therefore magnification of their respective advantages, providing more valuable solutions not only for industrial processes but also for reproducing biological processes. This review focuses on membrane-based microfluidic devices for biomedical science with an emphasis on microfluidic artificial organs and organs-on-chip. We provide the basic concepts of membrane technology and the laws governing mass transport. The role of the membrane in biomedical microfluidic devices, along with the required properties, available materials, and current challenges are summarized. We believe that the present review may be a starting point and a resource for researchers who aim to replicate a biological phenomenon on-chip by applying membrane technology, for moving forward the biomedical applications.
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Affiliation(s)
- Silvia Tea Calzuola
- UMR7646 Laboratoire d'hydrodynamique (LadHyX), Ecole Polytechnique, Palaiseau, France.
- Eden Tech, Paris, France
| | - Gwenyth Newman
- Eden Tech, Paris, France
- Department of Medicine and Surgery, Università degli Studi di Milano-Bicocca, Milan, Italy
| | - Thomas Feaugas
- Eden Tech, Paris, France
- Department of Medicine and Surgery, Università degli Studi di Milano-Bicocca, Milan, Italy
| | | | | | | | | | - Goran M Stojanovic
- Faculty of Technical Sciences, University of Novi Sad, T. D. Obradovića 6, 21000 Novi Sad, Serbia
| | - Jasmina Vidic
- Micalis Institute, INRAE, AgroParisTech, Université Paris-Saclay, Jouy-en-Josas, France
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3
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Ma LJ, Akor EA, Thompson AJ, Potkay JA. A Parametric Analysis of Capillary Height in Single-Layer, Small-Scale Microfluidic Artificial Lungs. MICROMACHINES 2022; 13:822. [PMID: 35744436 PMCID: PMC9229210 DOI: 10.3390/mi13060822] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 05/02/2022] [Revised: 05/23/2022] [Accepted: 05/23/2022] [Indexed: 02/04/2023]
Abstract
Microfluidic artificial lungs (μALs) are being investigated for their ability to closely mimic the size scale and cellular environment of natural lungs. Researchers have developed μALs with small artificial capillary diameters (10-50 µm; to increase gas exchange efficiency) and with large capillary diameters (~100 µm; to simplify design and construction). However, no study has directly investigated the impact of capillary height on μAL properties. Here, we use Murray's law and the Hagen-Poiseuille equation to design single-layer, small-scale μALs with capillary heights between 10 and 100 µm. Each µAL contained two blood channel types: capillaries for gas exchange; and distribution channels for delivering blood to/from capillaries. Three designs with capillary heights of 30, 60, and 100 µm were chosen for further modeling, implementation and testing with blood. Flow simulations were used to validate and ensure equal pressures. Designs were fabricated using soft lithography. Gas exchange and pressure drop were tested using whole bovine blood. All three designs exhibited similar pressure drops and gas exchange; however, the μAL with 60 µm tall capillaries had a significantly higher wall shear rate (although physiologic), smaller priming volume and smaller total blood contacting surface area than the 30 and 100 µm designs. Future μAL designs may need to consider the impact of capillary height when optimizing performance.
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Affiliation(s)
- Lindsay J. Ma
- Department of Surgery, University of Michigan, Ann Arbor, MI 48109, USA; (L.J.M.); (E.A.A.); (A.J.T.)
- Veterans Affairs Ann Arbor Healthcare System, Ann Arbor, MI 48109, USA
| | - Emmanuel A. Akor
- Department of Surgery, University of Michigan, Ann Arbor, MI 48109, USA; (L.J.M.); (E.A.A.); (A.J.T.)
- Veterans Affairs Ann Arbor Healthcare System, Ann Arbor, MI 48109, USA
| | - Alex J. Thompson
- Department of Surgery, University of Michigan, Ann Arbor, MI 48109, USA; (L.J.M.); (E.A.A.); (A.J.T.)
- Veterans Affairs Ann Arbor Healthcare System, Ann Arbor, MI 48109, USA
| | - Joseph A. Potkay
- Department of Surgery, University of Michigan, Ann Arbor, MI 48109, USA; (L.J.M.); (E.A.A.); (A.J.T.)
- Veterans Affairs Ann Arbor Healthcare System, Ann Arbor, MI 48109, USA
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Astor TL, Borenstein JT. The microfluidic artificial lung: Mimicking nature's blood path design to solve the biocompatibility paradox. Artif Organs 2022; 46:1227-1239. [PMID: 35514275 DOI: 10.1111/aor.14266] [Citation(s) in RCA: 5] [Impact Index Per Article: 2.5] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 01/29/2022] [Revised: 04/03/2022] [Accepted: 04/04/2022] [Indexed: 11/28/2022]
Abstract
The increasing prevalence of chronic lung disease worldwide, combined with the emergence of multiple pandemics arising from respiratory viruses over the past century, highlights the need for safer and efficacious means for providing artificial lung support. Mechanical ventilation is currently used for the vast majority of patients suffering from acute and chronic lung failure, but risks further injury or infection to the patient's already compromised lung function. Extracorporeal membrane oxygenation (ECMO) has emerged as a means of providing direct gas exchange with the blood, but limited access to the technology and the complexity of the blood circuit have prevented the broader expansion of its use. A promising avenue toward simplifying and minimizing complications arising from the blood circuit, microfluidics-based artificial organ support, has emerged over the past decade as an opportunity to overcome many of the fundamental limitations of the current standard for ECMO cartridges, hollow fiber membrane oxygenators. The power of microfluidics technology for this application stems from its ability to recapitulate key aspects of physiological microcirculation, including the small dimensions of blood vessel structures and gas transfer membranes. An even greater advantage of microfluidics, the ability to configure blood flow patterns that mimic the smooth, branching nature of vascular networks, holds the potential to reduce the incidence of clotting and bleeding and to minimize reliance on anticoagulants. Here, we summarize recent progress and address future directions and goals for this potentially transformative approach to artificial lung support.
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Affiliation(s)
- Todd L Astor
- Biomembretics, Inc., Boston, Massachusetts, USA.,Department of Medicine, Massachusetts General Hospital, Boston, Massachusetts, USA
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5
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Lachaux J, Hwang G, Arouche N, Naserian S, Harouri A, Lotito V, Casari C, Lok T, Menager JB, Issard J, Guihaire J, Denis CV, Lenting PJ, Barakat AI, Uzan G, Mercier O, Haghiri-Gosnet AM. A compact integrated microfluidic oxygenator with high gas exchange efficiency and compatibility for long-lasting endothelialization. LAB ON A CHIP 2021; 21:4791-4804. [PMID: 34309615 DOI: 10.1039/d1lc00356a] [Citation(s) in RCA: 10] [Impact Index Per Article: 3.3] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/13/2023]
Abstract
We have developed and tested a novel microfluidic device for blood oxygenation, which exhibits a large surface area of gas exchange and can support long-term sustainable endothelialization of blood microcapillaries, enhancing its hemocompatibility for clinical applications. The architecture of the parallel stacking of the trilayers is based on a central injection for blood and a lateral injection/output for gas which allows significant reduction in shear stress, promoting sustainable endothelialization since cells can be maintained viable for up to 2 weeks after initial seeding in the blood microchannel network. The circular design of curved blood capillaries allows covering a maximal surface area at 4 inch wafer scale, producing high oxygen uptake and carbon dioxide release in each single unit. Since the conventional bonding process based on oxygen plasma cannot be used for surface areas larger than several cm2, a new "wet bonding" process based on soft microprinting has been developed and patented. Using this new protocol, each 4 inch trilayer unit can be sealed without a collapsed membrane even at reduced 15 μm thickness and can support a high blood flow rate. The height of the blood channels has been optimized to reduce pressure drop and enhance gas exchange at a high volumetric blood flow rate up to 15 ml min-1. The simplicity of connecting different units in the stacked architecture is demonstrated for 3- or 5-unit stacked devices that exhibit remarkable performance with low primary volume, high oxygen uptake and carbon dioxide release and high flow rate of up to 80 ml min-1.
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Affiliation(s)
- Julie Lachaux
- Université Paris-Saclay, CNRS, Centre de Nanosciences et Nanotechnologies C2N, UMR9001, Palaiseau 91120, France.
| | - Gilgueng Hwang
- Université Paris-Saclay, CNRS, Centre de Nanosciences et Nanotechnologies C2N, UMR9001, Palaiseau 91120, France.
| | - Nassim Arouche
- Université Paris-Saclay, INSERM, UMR-S-MD 1197, Hôpital Paul Brousse, Villejuif, France
| | - Sina Naserian
- Université Paris-Saclay, INSERM, UMR-S-MD 1197, Hôpital Paul Brousse, Villejuif, France
| | - Abdelmounaim Harouri
- Université Paris-Saclay, CNRS, Centre de Nanosciences et Nanotechnologies C2N, UMR9001, Palaiseau 91120, France.
| | - Valeria Lotito
- Université Paris-Saclay, CNRS, Centre de Nanosciences et Nanotechnologies C2N, UMR9001, Palaiseau 91120, France.
| | - Caterina Casari
- Université Paris-Saclay, INSERM, UMR S1176, Le Kremin-Bicêtre, France
| | - Thevy Lok
- LadHyX, CNRS, Ecole polytechnique, Institut polytechnique de Paris, Palaiseau 91120, France
| | - Jean Baptiste Menager
- Université Paris-Saclay, INSERM UMR_S 999 "Pulmonary Hypertension: Pathophysiology and Novel Therapies", Hôpital Marie Lannelongue, Le Plessis-Robinson, France
| | - Justin Issard
- Université Paris-Saclay, INSERM UMR_S 999 "Pulmonary Hypertension: Pathophysiology and Novel Therapies", Hôpital Marie Lannelongue, Le Plessis-Robinson, France
| | - Julien Guihaire
- Université Paris-Saclay, INSERM UMR_S 999 "Pulmonary Hypertension: Pathophysiology and Novel Therapies", Hôpital Marie Lannelongue, Le Plessis-Robinson, France
| | - Cécile V Denis
- Université Paris-Saclay, INSERM, UMR S1176, Le Kremin-Bicêtre, France
| | - Peter J Lenting
- Université Paris-Saclay, INSERM, UMR S1176, Le Kremin-Bicêtre, France
| | - Abdul I Barakat
- LadHyX, CNRS, Ecole polytechnique, Institut polytechnique de Paris, Palaiseau 91120, France
| | - Georges Uzan
- Université Paris-Saclay, INSERM, UMR-S-MD 1197, Hôpital Paul Brousse, Villejuif, France
| | - Olaf Mercier
- Université Paris-Saclay, INSERM UMR_S 999 "Pulmonary Hypertension: Pathophysiology and Novel Therapies", Hôpital Marie Lannelongue, Le Plessis-Robinson, France
| | - Anne-Marie Haghiri-Gosnet
- Université Paris-Saclay, CNRS, Centre de Nanosciences et Nanotechnologies C2N, UMR9001, Palaiseau 91120, France.
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Dabaghi M, Rochow N, Saraei N, Fusch G, Monkman S, Da K, Shahin‐Shamsabadi A, Brash JL, Predescu D, Delaney K, Fusch C, Selvaganapathy PR. A Pumpless Microfluidic Neonatal Lung Assist Device for Support of Preterm Neonates in Respiratory Distress. ADVANCED SCIENCE (WEINHEIM, BADEN-WURTTEMBERG, GERMANY) 2020; 7:2001860. [PMID: 33173732 PMCID: PMC7610273 DOI: 10.1002/advs.202001860] [Citation(s) in RCA: 11] [Impact Index Per Article: 2.8] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Received: 05/18/2020] [Revised: 07/16/2020] [Indexed: 05/19/2023]
Abstract
Premature neonates suffer from respiratory morbidity as their lungs are immature, and current supportive treatment such as mechanical ventilation or extracorporeal membrane oxygenation causes iatrogenic injuries. A non-invasive and biomimetic concept known as the "artificial placenta" (AP) would be beneficial to overcome complications associated with the current respiratory support of preterm infants. Here, a pumpless oxygenator connected to the systemic circulation supports the lung function to relieve respiratory distress. In this paper, the first successful operation of a microfluidic, artificial placenta type neonatal lung assist device (LAD) on a newborn piglet model, which is the closest representation of preterm human infants, is demonstrated. This LAD has high oxygenation capability in both pure oxygen and room air as the sweep gas. The respiratory distress that the newborn piglet is put under during experimentation, repeatedly and over a significant duration of time, is able to be relieved. These findings indicate that this LAD has a potential application as a biomimetic artificial placenta to support the respiratory needs of preterm neonates.
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Affiliation(s)
| | - Niels Rochow
- Department of PediatricsMcMaster UniversityHamiltonONCanada
- Paracelsus Medical UniversityDepartment of PediatricsUniversity Hospital NurembergNurembergGermany
| | - Neda Saraei
- Department of Mechanical EngineeringMcMaster UniversityHamiltonONCanada
| | - Gerhard Fusch
- Department of PediatricsMcMaster UniversityHamiltonONCanada
| | | | - Kevin Da
- Department of Chemical EngineeringMcMaster UniversityHamiltonONCanada
| | | | - John L. Brash
- School of Biomedical EngineeringMcMaster UniversityHamiltonONCanada
- Department of Chemical EngineeringMcMaster UniversityHamiltonONCanada
| | | | - Kathleen Delaney
- Central Animal Facility DepartmentMcMaster UniversityHamiltonONCanada
| | - Christoph Fusch
- School of Biomedical EngineeringMcMaster UniversityHamiltonONCanada
- Department of PediatricsMcMaster UniversityHamiltonONCanada
- Paracelsus Medical UniversityDepartment of PediatricsUniversity Hospital NurembergNurembergGermany
| | - P. Ravi Selvaganapathy
- School of Biomedical EngineeringMcMaster UniversityHamiltonONCanada
- Department of Mechanical EngineeringMcMaster UniversityHamiltonONCanada
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7
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Advancing Front Oxygen Transfer Model for the Design of Microchannel Artificial Lungs. ASAIO J 2020; 66:1054-1062. [DOI: 10.1097/mat.0000000000001129] [Citation(s) in RCA: 3] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/25/2022] Open
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Dabaghi M, Saraei N, Fusch G, Rochow N, Brash JL, Fusch C, Selvaganapathy PR. Microfluidic blood oxygenators with integrated hollow chambers for enhanced air exchange from all four sides. J Memb Sci 2020. [DOI: 10.1016/j.memsci.2019.117741] [Citation(s) in RCA: 5] [Impact Index Per Article: 1.3] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/22/2022]
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10
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Dabaghi M, Saraei N, Fusch G, Rochow N, Brash JL, Fusch C, Ravi Selvaganapathy P. An ultra-thin, all PDMS-based microfluidic lung assist device with high oxygenation capacity. BIOMICROFLUIDICS 2019; 13:034116. [PMID: 31263515 PMCID: PMC6597343 DOI: 10.1063/1.5091492] [Citation(s) in RCA: 9] [Impact Index Per Article: 1.8] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Received: 02/02/2019] [Accepted: 06/11/2019] [Indexed: 05/06/2023]
Abstract
Preterm neonates with immature lungs require a lung assist device (LAD) to maintain oxygen saturation at normal levels. Over the last decade, microfluidic blood oxygenators have attracted considerable interest due to their ability to incorporate unique biomimetic design and to oxygenate in a physiologically relevant manner. Polydimethylsiloxane (PDMS) has become the main material choice for these kinds of devices due to its high gas permeability. However, fabrication of large area ultrathin microfluidic devices that can oxygenate sufficient blood volumes at clinically relevant flow rates, entirely made of PDMS, have been difficult to achieve primarily due to failure associated with stiction of thin PDMS membranes to each other at undesired locations during assembly. Here, we demonstrate the use of a modified fabrication process to produce large area ultrathin oxygenators entirely made of PDMS and robust enough to withstand the hydraulic conditions that are encountered physiologically. We also demonstrate that a LAD assembled from these ultrathin double-sided microfluidic blood oxygenators can increase the oxygen saturation level by 30% at a flow rate of 30 ml/min and a pressure drop of 21 mm Hg in room air which is adequate for 1 kg preterm neonates. In addition, we demonstrated that our LAD could withstand high blood flow rate of 150 ml/min and increase oxygen saturation by 26.7% in enriched oxygen environment which is the highest gas exchange reported so far by any microfluidic-based blood oxygenators. Such performance makes this LAD suitable to provide support to 1 kg neonate suffering from respiratory distress syndrome.
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Affiliation(s)
| | - Neda Saraei
- Department of Mechanical Engineering, McMaster University, Hamilton, Ontario L8S 4L7, Canada
| | - Gerhard Fusch
- Department of Pediatrics, McMaster University, Hamilton, Ontario L8S 4K1, Canada
| | - Niels Rochow
- Department of Pediatrics, McMaster University, Hamilton, Ontario L8S 4K1, Canada
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Thompson AJ, Ma LJ, Plegue TJ, Potkay JA. Design Analysis and Optimization of a Single-Layer PDMS Microfluidic Artificial Lung. IEEE Trans Biomed Eng 2019; 66:1082-1093. [DOI: 10.1109/tbme.2018.2866782] [Citation(s) in RCA: 20] [Impact Index Per Article: 4.0] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/07/2022]
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12
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Dabaghi M, Saraei N, Fusch G, Rochow N, Brash JL, Fusch C, Selvaganapathy PR. An ultra-thin highly flexible microfluidic device for blood oxygenation. LAB ON A CHIP 2018; 18:3780-3789. [PMID: 30421770 DOI: 10.1039/c8lc01083h] [Citation(s) in RCA: 12] [Impact Index Per Article: 2.0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 05/22/2023]
Abstract
Many neonates who are born premature suffer from respiratory distress syndrome (RDS) for which mechanical ventilation and an extracorporeal membrane oxygenation (ECMO) device are used in treatment. However, the use of these invasive techniques results in higher risk of complications like bronchopulmonary dysplasia or requires surgery to gain vascular access. An alternative biomimetic approach is to use the umbilical cord as a vascular access and to connect a passive device to the baby that functions like a placenta. This concept, known as the artificial placenta, provides enough oxygenation and causes minimal distress or complications. Herein, we have developed a new artificial placenta-type microfluidic blood oxygenator (APMBO) with high gas exchange, low priming volume and low hydraulic resistance such that it can be operated only by pressure differential provided by the baby's heart. Mimicking the placenta, we have made our new device ultra-thin and flexible so that it can be folded into a desired shape without losing its capability for gas exchange and achieve a compact form factor. The ability to fold allowed optimization of connectors and reduced the overall priming volume to the sub-milliliter range while achieving a high oxygen uptake which would be sufficient for preterm neonates with a birth-weight of around 0.5 kg.
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Dabaghi M, Fusch G, Saraei N, Rochow N, Brash JL, Fusch C, Ravi Selvaganapathy P. An artificial placenta type microfluidic blood oxygenator with double-sided gas transfer microchannels and its integration as a neonatal lung assist device. BIOMICROFLUIDICS 2018; 12:044101. [PMID: 30867861 PMCID: PMC6404930 DOI: 10.1063/1.5034791] [Citation(s) in RCA: 28] [Impact Index Per Article: 4.7] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Received: 04/12/2018] [Accepted: 06/05/2018] [Indexed: 05/22/2023]
Abstract
Preterm neonates suffering from respiratory distress syndrome require assistive support in the form of mechanical ventilation or extracorporeal membrane oxygenation, which may lead to long-term complications or even death. Here, we describe a high performance artificial placenta type microfluidic oxygenator, termed as a double-sided single oxygenator unit (dsSOU), which combines microwire stainless-steel mesh reinforced gas permeable membranes on both sides of a microchannel network, thereby significantly reducing the diffusional resistance to oxygen uptake as compared to the previous single-sided oxygenator designs. The new oxygenator is designed to be operated in a pumpless manner, perfused solely due to the arterio-venous pressure difference in a neonate and oxygenate blood through exposure directly to ambient atmosphere without any air or oxygen pumping. The best performing dsSOUs showed up to ∼343% improvement in oxygen transfer compared to a single-sided SOU (ssSOU) with the same height. Later, the dsSOUs were optimized and integrated to build a lung assist device (LAD) that could support the oxygenation needs for a 1-2 kg neonate under clinically relevant conditions for the artificial placenta, namely, flow rates ranging from 10 to 60 ml/min and a pressure drop of 10-60 mmHg. The LAD provided an oxygen uptake of 0.78-2.86 ml/min, which corresponded to the increase in oxygen saturation from 57 ± 1% to 93%-100%, under pure oxygen environment. This microfluidic lung assist device combines elegant design with new microfabrication methods to develop a pumpless, microfluidic blood oxygenator that is capable of supporting 30% of the oxygen needs of a pre-term neonate.
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Affiliation(s)
| | - Gerhard Fusch
- Department of Pediatrics, McMaster University, Hamilton, Ontario L8S 4L7, Canada
| | - Neda Saraei
- Department of Mechanical Engineering, McMaster University, Hamilton, Ontario L8S 4L7, Canada
| | - Niels Rochow
- Department of Pediatrics, McMaster University, Hamilton, Ontario L8S 4L7, Canada
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14
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Matharoo H, Dabaghi M, Rochow N, Fusch G, Saraei N, Tauhiduzzaman M, Veldhuis S, Brash J, Fusch C, Selvaganapathy PR. Steel reinforced composite silicone membranes and its integration to microfluidic oxygenators for high performance gas exchange. BIOMICROFLUIDICS 2018; 12:014107. [PMID: 29375728 PMCID: PMC5764751 DOI: 10.1063/1.5014028] [Citation(s) in RCA: 16] [Impact Index Per Article: 2.7] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Received: 11/14/2017] [Accepted: 01/02/2018] [Indexed: 05/19/2023]
Abstract
Respiratory distress syndrome (RDS) is one of the main causes of fatality in newborn infants, particularly in neonates with low birth-weight. Commercial extracorporeal oxygenators have been used for low-birth-weight neonates in neonatal intensive care units. However, these oxygenators require high blood volumes to prime. In the last decade, microfluidics oxygenators using enriched oxygen have been developed for this purpose. Some of these oxygenators use thin polydimethylsiloxane (PDMS) membranes to facilitate gas exchange between the blood flowing in the microchannels and the ambient air outside. However, PDMS is elastic and the thin membranes exhibit significant deformation and delamination under pressure which alters the architecture of the devices causing poor oxygenation or device failure. Therefore, an alternate membrane with high stability, low deformation under pressure, and high gas exchange was desired. In this paper, we present a novel composite membrane consisting of an ultra-thin stainless-steel mesh embedded in PDMS, designed specifically for a microfluidic single oxygenator unit (SOU). In comparison to homogeneous PDMS membranes, this composite membrane demonstrated high stability, low deformation under pressure, and high gas exchange. In addition, a new design for oxygenator with sloping profile and tapered inlet configuration has been introduced to achieve the same gas exchange at lower pressure drops. SOUs were tested by bovine blood to evaluate gas exchange properties. Among all tested SOUs, the flat design SOU with composite membrane has the highest oxygen exchange of 40.32 ml/min m2. The superior performance of the new device with composite membrane was demonstrated by constructing a lung assist device (LAD) with a low priming volume of 10 ml. The LAD was achieved by the oxygen uptake of 0.48-0.90 ml/min and the CO2 release of 1.05-2.27 ml/min at blood flow rates ranging between 8 and 48 ml/min. This LAD was shown to increase the oxygen saturation level by 25% at the low pressure drop of 29 mm Hg. Finally, a piglet was used to test the gas exchange capacity of the LAD in vivo. The animal experiment results were in accordance with in-vitro results, which shows that the LAD is capable of providing sufficient gas exchange at a blood flow rate of ∼24 ml/min.
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Affiliation(s)
- Harpreet Matharoo
- Department of Mechanical Engineering, McMaster University, Hamilton, Ontario L8S 4L7, Canada
| | | | - Niels Rochow
- Department of Pediatrics, McMaster University, Hamilton, Ontario L8S 4K1, Canada
| | - Gerhard Fusch
- Department of Pediatrics, McMaster University, Hamilton, Ontario L8S 4K1, Canada
| | - Neda Saraei
- Department of Mechanical Engineering, McMaster University, Hamilton, Ontario L8S 4L7, Canada
| | - Mohammed Tauhiduzzaman
- Department of Mechanical Engineering, McMaster University, Hamilton, Ontario L8S 4L7, Canada
| | - Stephen Veldhuis
- Department of Mechanical Engineering, McMaster University, Hamilton, Ontario L8S 4L7, Canada
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Thompson AJ, Marks LH, Goudie MJ, Rojas-Pena A, Handa H, Potkay JA. A small-scale, rolled-membrane microfluidic artificial lung designed towards future large area manufacturing. BIOMICROFLUIDICS 2017; 11:024113. [PMID: 28798849 PMCID: PMC5533476 DOI: 10.1063/1.4979676] [Citation(s) in RCA: 18] [Impact Index Per Article: 2.6] [Reference Citation Analysis] [Abstract] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Received: 09/23/2016] [Accepted: 03/22/2017] [Indexed: 05/22/2023]
Abstract
Artificial lungs have been used in the clinic for multiple decades to supplement patient pulmonary function. Recently, small-scale microfluidic artificial lungs (μAL) have been demonstrated with large surface area to blood volume ratios, biomimetic blood flow paths, and pressure drops compatible with pumpless operation. Initial small-scale microfluidic devices with blood flow rates in the μl/min to ml/min range have exhibited excellent gas transfer efficiencies; however, current manufacturing techniques may not be suitable for scaling up to human applications. Here, we present a new manufacturing technology for a microfluidic artificial lung in which the structure is assembled via a continuous "rolling" and bonding procedure from a single, patterned layer of polydimethyl siloxane (PDMS). This method is demonstrated in a small-scale four-layer device, but is expected to easily scale to larger area devices. The presented devices have a biomimetic branching blood flow network, 10 μm tall artificial capillaries, and a 66 μm thick gas transfer membrane. Gas transfer efficiency in blood was evaluated over a range of blood flow rates (0.1-1.25 ml/min) for two different sweep gases (pure O2, atmospheric air). The achieved gas transfer data closely follow predicted theoretical values for oxygenation and CO2 removal, while pressure drop is marginally higher than predicted. This work is the first step in developing a scalable method for creating large area microfluidic artificial lungs. Although designed for microfluidic artificial lungs, the presented technique is expected to result in the first manufacturing method capable of simply and easily creating large area microfluidic devices from PDMS.
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Affiliation(s)
| | - L H Marks
- VA Ann Arbor Healthcare System, Ann Arbor, Michigan 48105, USA
| | - M J Goudie
- College of Engineering, University of Georgia, Athens, Georgia 30602, USA
| | - A Rojas-Pena
- Department of Surgery, University of Michigan, Ann Arbor, Michigan 48109, USA
| | - H Handa
- College of Engineering, University of Georgia, Athens, Georgia 30602, USA
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16
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Gimbel AA, Flores E, Koo A, García-Cardeña G, Borenstein JT. Development of a biomimetic microfluidic oxygen transfer device. LAB ON A CHIP 2016; 16:3227-34. [PMID: 27411972 PMCID: PMC4987252 DOI: 10.1039/c6lc00641h] [Citation(s) in RCA: 14] [Impact Index Per Article: 1.8] [Reference Citation Analysis] [Abstract] [MESH Headings] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 05/22/2023]
Abstract
Blood oxygenators provide crucial life support for patients suffering from respiratory failure, but their use is severely limited by the complex nature of the blood circuit and by complications including bleeding and clotting. We have fabricated and tested a multilayer microfluidic blood oxygenation prototype designed to have a lower blood prime volume and improved blood circulation relative to current hollow fiber cartridge oxygenators. Here we address processes for scaling the device toward clinically relevant oxygen transfer rates while maintaining a low prime volume of blood in the device, which is required for clinical applications in cardiopulmonary support and ultimately for chronic use. Approaches for scaling the device toward clinically relevant gas transfer rates, both by expanding the active surface area of the network of blood microchannels in a planar layer and by increasing the number of microfluidic layers stacked together in a three-dimensional device are addressed. In addition to reducing prime volume and enhancing gas transfer efficiency, the geometric properties of the microchannel networks are designed to increase device safety by providing a biomimetic and physiologically realistic flow path for the blood. Safety and hemocompatibility are also influenced by blood-surface interactions within the device. In order to further enhance device safety and hemocompatibility, we have demonstrated successful coating of the blood flow pathways with human endothelial cells, in order to confer the ability of the endothelium to inhibit coagulation and thrombus formation. Blood testing results provide confirmation of fibrin clot formation in non-endothelialized devices, while negligible clot formation was documented in cell-coated devices. Gas transfer testing demonstrates that the endothelial lining does not reduce the transfer efficiency relative to acellular devices. This process of scaling the microfluidic architecture and utilizing autologous cells to line the channels and mitigate coagulation represents a promising avenue for therapy for patients suffering from a range of acute and chronic lung diseases.
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Affiliation(s)
- A A Gimbel
- Department of Biomedical Engineering, The Charles Stark Draper Laboratory, Inc., Cambridge, MA 02139, USA.
| | - E Flores
- Department of Biomedical Engineering, The Charles Stark Draper Laboratory, Inc., Cambridge, MA 02139, USA.
| | - A Koo
- Laboratory for Systems Biology, Center for Excellence in Vascular Biology, Department of Pathology, Brigham and Women's Hospital and Harvard Medical School, Boston, MA 02115, USA
| | - G García-Cardeña
- Laboratory for Systems Biology, Center for Excellence in Vascular Biology, Department of Pathology, Brigham and Women's Hospital and Harvard Medical School, Boston, MA 02115, USA
| | - J T Borenstein
- Department of Biomedical Engineering, The Charles Stark Draper Laboratory, Inc., Cambridge, MA 02139, USA.
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Potkay JA. Reply to the 'Comment on "The promise of microfluidic artificial lungs"' by G. Wagner, A. Kaesler, U. Steinseifer, T. Schmitz-Rode and J. Arens, Lab Chip, 2016, 16. LAB ON A CHIP 2016; 16:1274-1277. [PMID: 26957040 DOI: 10.1039/c6lc00221h] [Citation(s) in RCA: 8] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/05/2023]
Abstract
This response explores and discusses the critiques of Wagner et al. in their "Comment on 'The promise of microfluidic artificial lungs' by Joseph A. Potkay, Lab Chip, 2014, 14, 4122-4138".
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Affiliation(s)
- Joseph A Potkay
- VA Ann Arbor Healthcare System, Department of Surgery, University of Michigan, Ann Arbor, MI 48109, USA.
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