Cargando…
Dip TIPS as a Facile and Versatile Method for Fabrication of Polymer Foams with Controlled Shape, Size and Pore Architecture for Bioengineering Applications
The porous polymer foams act as a template for neotissuegenesis in tissue engineering, and, as a reservoir for cell transplants such as pancreatic islets while simultaneously providing a functional interface with the host body. The fabrication of foams with the controlled shape, size and pore struct...
Autores principales: | , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Public Library of Science
2014
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4183526/ https://www.ncbi.nlm.nih.gov/pubmed/25275373 http://dx.doi.org/10.1371/journal.pone.0108792 |
_version_ | 1782337705403744256 |
---|---|
author | Kasoju, Naresh Kubies, Dana Kumorek, Marta M. Kříž, Jan Fábryová, Eva Machová, Lud'ka Kovářová, Jana Rypáček, František |
author_facet | Kasoju, Naresh Kubies, Dana Kumorek, Marta M. Kříž, Jan Fábryová, Eva Machová, Lud'ka Kovářová, Jana Rypáček, František |
author_sort | Kasoju, Naresh |
collection | PubMed |
description | The porous polymer foams act as a template for neotissuegenesis in tissue engineering, and, as a reservoir for cell transplants such as pancreatic islets while simultaneously providing a functional interface with the host body. The fabrication of foams with the controlled shape, size and pore structure is of prime importance in various bioengineering applications. To this end, here we demonstrate a thermally induced phase separation (TIPS) based facile process for the fabrication of polymer foams with a controlled architecture. The setup comprises of a metallic template bar (T), a metallic conducting block (C) and a non-metallic reservoir tube (R), connected in sequence T-C-R. The process hereinafter termed as Dip TIPS, involves the dipping of the T-bar into a polymer solution, followed by filling of the R-tube with a freezing mixture to induce the phase separation of a polymer solution in the immediate vicinity of T-bar; Subsequent free-drying or freeze-extraction steps produced the polymer foams. An easy exchange of the T-bar of a spherical or rectangular shape allowed the fabrication of tubular, open- capsular and flat-sheet shaped foams. A mere change in the quenching time produced the foams with a thickness ranging from hundreds of microns to several millimeters. And, the pore size was conveniently controlled by varying either the polymer concentration or the quenching temperature. Subsequent in vivo studies in brown Norway rats for 4-weeks demonstrated the guided cell infiltration and homogenous cell distribution through the polymer matrix, without any fibrous capsule and necrotic core. In conclusion, the results show the “Dip TIPS” as a facile and adaptable process for the fabrication of anisotropic channeled porous polymer foams of various shapes and sizes for potential applications in tissue engineering, cell transplantation and other related fields. |
format | Online Article Text |
id | pubmed-4183526 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2014 |
publisher | Public Library of Science |
record_format | MEDLINE/PubMed |
spelling | pubmed-41835262014-10-07 Dip TIPS as a Facile and Versatile Method for Fabrication of Polymer Foams with Controlled Shape, Size and Pore Architecture for Bioengineering Applications Kasoju, Naresh Kubies, Dana Kumorek, Marta M. Kříž, Jan Fábryová, Eva Machová, Lud'ka Kovářová, Jana Rypáček, František PLoS One Research Article The porous polymer foams act as a template for neotissuegenesis in tissue engineering, and, as a reservoir for cell transplants such as pancreatic islets while simultaneously providing a functional interface with the host body. The fabrication of foams with the controlled shape, size and pore structure is of prime importance in various bioengineering applications. To this end, here we demonstrate a thermally induced phase separation (TIPS) based facile process for the fabrication of polymer foams with a controlled architecture. The setup comprises of a metallic template bar (T), a metallic conducting block (C) and a non-metallic reservoir tube (R), connected in sequence T-C-R. The process hereinafter termed as Dip TIPS, involves the dipping of the T-bar into a polymer solution, followed by filling of the R-tube with a freezing mixture to induce the phase separation of a polymer solution in the immediate vicinity of T-bar; Subsequent free-drying or freeze-extraction steps produced the polymer foams. An easy exchange of the T-bar of a spherical or rectangular shape allowed the fabrication of tubular, open- capsular and flat-sheet shaped foams. A mere change in the quenching time produced the foams with a thickness ranging from hundreds of microns to several millimeters. And, the pore size was conveniently controlled by varying either the polymer concentration or the quenching temperature. Subsequent in vivo studies in brown Norway rats for 4-weeks demonstrated the guided cell infiltration and homogenous cell distribution through the polymer matrix, without any fibrous capsule and necrotic core. In conclusion, the results show the “Dip TIPS” as a facile and adaptable process for the fabrication of anisotropic channeled porous polymer foams of various shapes and sizes for potential applications in tissue engineering, cell transplantation and other related fields. Public Library of Science 2014-10-02 /pmc/articles/PMC4183526/ /pubmed/25275373 http://dx.doi.org/10.1371/journal.pone.0108792 Text en © 2014 Kasoju et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited. |
spellingShingle | Research Article Kasoju, Naresh Kubies, Dana Kumorek, Marta M. Kříž, Jan Fábryová, Eva Machová, Lud'ka Kovářová, Jana Rypáček, František Dip TIPS as a Facile and Versatile Method for Fabrication of Polymer Foams with Controlled Shape, Size and Pore Architecture for Bioengineering Applications |
title | Dip TIPS as a Facile and Versatile Method for Fabrication of Polymer Foams with Controlled Shape, Size and Pore Architecture for Bioengineering Applications |
title_full | Dip TIPS as a Facile and Versatile Method for Fabrication of Polymer Foams with Controlled Shape, Size and Pore Architecture for Bioengineering Applications |
title_fullStr | Dip TIPS as a Facile and Versatile Method for Fabrication of Polymer Foams with Controlled Shape, Size and Pore Architecture for Bioengineering Applications |
title_full_unstemmed | Dip TIPS as a Facile and Versatile Method for Fabrication of Polymer Foams with Controlled Shape, Size and Pore Architecture for Bioengineering Applications |
title_short | Dip TIPS as a Facile and Versatile Method for Fabrication of Polymer Foams with Controlled Shape, Size and Pore Architecture for Bioengineering Applications |
title_sort | dip tips as a facile and versatile method for fabrication of polymer foams with controlled shape, size and pore architecture for bioengineering applications |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4183526/ https://www.ncbi.nlm.nih.gov/pubmed/25275373 http://dx.doi.org/10.1371/journal.pone.0108792 |
work_keys_str_mv | AT kasojunaresh diptipsasafacileandversatilemethodforfabricationofpolymerfoamswithcontrolledshapesizeandporearchitectureforbioengineeringapplications AT kubiesdana diptipsasafacileandversatilemethodforfabricationofpolymerfoamswithcontrolledshapesizeandporearchitectureforbioengineeringapplications AT kumorekmartam diptipsasafacileandversatilemethodforfabricationofpolymerfoamswithcontrolledshapesizeandporearchitectureforbioengineeringapplications AT krizjan diptipsasafacileandversatilemethodforfabricationofpolymerfoamswithcontrolledshapesizeandporearchitectureforbioengineeringapplications AT fabryovaeva diptipsasafacileandversatilemethodforfabricationofpolymerfoamswithcontrolledshapesizeandporearchitectureforbioengineeringapplications AT machovaludka diptipsasafacileandversatilemethodforfabricationofpolymerfoamswithcontrolledshapesizeandporearchitectureforbioengineeringapplications AT kovarovajana diptipsasafacileandversatilemethodforfabricationofpolymerfoamswithcontrolledshapesizeandporearchitectureforbioengineeringapplications AT rypacekfrantisek diptipsasafacileandversatilemethodforfabricationofpolymerfoamswithcontrolledshapesizeandporearchitectureforbioengineeringapplications |