One-Step Fabrication of Porous Membrane-Based Scaffolds by Air-Water Interfacial Phase Separation: Opportunities for Engineered Tissues

被引:8
作者
Allijn, Iris [1 ]
du Preez, Nikola [1 ]
Tasior, Malgorzata [1 ]
Bansal, Ruchi [2 ]
Stamatialis, Dimitrios [1 ]
机构
[1] Univ Twente, Fac Sci & Technol, TechMed Ctr, Adv Organ Bioengn & Therapeut, NL-7500 AE Enschede, Netherlands
[2] Univ Twente, Fac Sci & Technol, TechMed Ctr, Dept Med Cell Biophys,Translat Liver Res, NL-7500 AE Enschede, Netherlands
关键词
air-water interfacial phase separation; membrane-based scaffolds; poly (trimethylene carbonate); tissue engineering; VIVO;
D O I
10.3390/membranes12050453
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Common methods for fabricating membrane-based scaffolds for tissue engineering with (hydrophobic) polymers include thermal or liquid-phase inversion, sintering, particle leaching, electrospinning and stereolithography. However, these methods have limitations, such as low resolution and pore interconnectivity and may often require the application of high temperatures and/or toxic porogens, additives or solvents. In this work, we aim to overcome some of these limitations and propose a one-step method to produce large porous membrane-based scaffolds formed by air-water interfacial phase separation using water as a pore-forming agent and casting substrate. Here, we provide proof of concept using poly (trimethylene carbonate), a flexible and biocompatible hydrophobic polymer. Membrane-based scaffolds were prepared by dropwise addition of the polymer solution to water. Upon contact, rapid solvent-non-solvent phase separation took place on the air-water interface, after which the scaffold was cured by UV irradiation. We can tune and control the morphology of these scaffolds, including pore size and porosity, by changing various parameters, including polymer concentration, solvent type and temperature. Importantly, human hepatic stellate cells cultured on these membrane-based scaffolds remained viable and showed no signs of pro-inflammatory stress. These results indicate that the proposed air-water interfacial phase separation represents a versatile method for creating porous membrane-based scaffolds for tissue engineering applications.
引用
收藏
页数:15
相关论文
共 37 条
[1]   Membranes for Modelling Cardiac Tissue Stiffness In Vitro Based on Poly(trimethylene carbonate) and Poly(ethylene glycol) Polymers [J].
Allijn, Iris ;
Ribeiro, Marcelo ;
Poot, Andre ;
Passier, Robert ;
Stamatialis, Dimitrios .
MEMBRANES, 2020, 10 (10) :1-12
[2]   Head-to-Head Comparison of Anti-Inflammatory Performance of Known Natural Products In Vitro [J].
Allijn, Iris E. ;
Vaessen, Stefan F. C. ;
van Ufford, Linda C. Quarles ;
Beukelman, Kees J. ;
de Winther, Menno P. J. ;
Storm, Gert ;
Schiffelers, Raymond M. .
PLOS ONE, 2016, 11 (05)
[3]   Hydrophilization and hydrophobic recovery in polymers obtained by casting of polymer solutions on water surface [J].
Bormashenko, Edward ;
Chaniel, Gilad ;
Gendelman, Oleg .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2014, 435 :192-197
[4]   Freeze-Drying as a Novel Biofabrication Method for Achieving a Controlled Microarchitecture within Large, Complex Natural Biomaterial Scaffolds [J].
Brougham, Claire M. ;
Levingstone, Tanya J. ;
Shen, Nian ;
Cooney, Gerard M. ;
Jockenhoevel, Stefan ;
Flanagan, Thomas C. ;
O'Brien, Fergal J. .
ADVANCED HEALTHCARE MATERIALS, 2017, 6 (21)
[5]   Bilayer-Ternary Polymer Solar Cells Fabricated Using Spontaneous Spreading on Water [J].
Colberts, Fallon J. M. ;
Wienk, Martijn M. ;
Heuvel, Ruurd ;
Li, Weiwei ;
Le Corre, Vincent M. ;
Koster, L. Jan Anton ;
Janssen, Rene A. J. .
ADVANCED ENERGY MATERIALS, 2018, 8 (32)
[6]   Multicellular Co-Culture in Three-Dimensional Gelatin Methacryloyl Hydrogels for Liver Tissue Engineering [J].
Cui, Juan ;
Wang, Huaping ;
Shi, Qing ;
Sun, Tao ;
Huang, Qiang ;
Fukuda, Toshio .
MOLECULES, 2019, 24 (09)
[7]   Photocrosslinkable Gelatin Hydrogels Modulate the Production of the Major Pro-inflammatory Cytokine, TNF-α, by Human Mononuclear Cells [J].
Donaldson, Amy R. ;
Tanase, Constantin Edi ;
Awuah, Dennis ;
Bathrinarayanan, Pranav Vasanthi ;
Hall, Laurence ;
Nikkhah, Mehdi ;
Khademhosseini, Ai ;
Rose, Felicity ;
Alexander, Cameron ;
Ghaemmaghami, Amir M. .
FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2018, 6
[8]   The effect of porosity on elastic moduli of polymer foams [J].
Drozdov, A. D. ;
Christiansen, J. deClaville .
JOURNAL OF APPLIED POLYMER SCIENCE, 2020, 137 (10)
[9]   MOLECULAR ARRANGEMENT OF A POLY(ACRYLONITRILE-CO-4-VINYLPYRIDINE) MONOLAYER ON WATER [J].
FRYSINGER, GS ;
BARNOSKI, AA ;
GAINES, GL ;
KORENOWSKI, GM .
LANGMUIR, 1994, 10 (07) :2277-2280
[10]   Ex vivo evaluation of the blood compatibility of mixed matrix haemodialysis membranes [J].
Geremia, I ;
Pavlenko, D. ;
Maksymow, K. ;
Rueth, M. ;
Lemke, H. D. ;
Stamatialis, D. .
ACTA BIOMATERIALIA, 2020, 111 (111) :118-128