Cyclodextrin-Polypyrrole Coatings of Scaffolds for Tissue Engineering.

cyclodextrin functionalisation microfibres polycaprolactone polypyrrole pyrrole scaffold tissue engineering

Journal

Polymers
ISSN: 2073-4360
Titre abrégé: Polymers (Basel)
Pays: Switzerland
ID NLM: 101545357

Informations de publication

Date de publication:
11 Mar 2019
Historique:
received: 24 01 2019
revised: 01 03 2019
accepted: 06 03 2019
entrez: 10 4 2019
pubmed: 10 4 2019
medline: 10 4 2019
Statut: epublish

Résumé

Polypyrrole is one of the most investigated conductive polymers used for tissue engineering applications because of its advantageous properties and the ability to promote different cell types' adhesion and proliferation. Together with β-cyclodextrin, which is capable of accommodating helpful biomolecules in its cavity, it would make a perfect couple for use as a scaffold for tissue engineering. Such scaffolds were prepared by the polymerisation of 6-(pyrrol-3-yl)hexanoic acid on polycaprolactone microfibres with subsequent attachment of β-cyclodextrin on the polypyrrole layer. The materials were deeply characterised by several physical and spectroscopic techniques. Testing of the cyclodextrin enriched composite scaffold revealed its better performance in in vitro experiments compared with pristine polycaprolactone or polypyrrole covered polycaprolactone scaffolds.

Identifiants

pubmed: 30960443
pii: polym11030459
doi: 10.3390/polym11030459
pmc: PMC6473528
pii:
doi:

Types de publication

Journal Article

Langues

eng

Subventions

Organisme : Ministerstvo Školství, Mládeže a Tělovýchovy
ID : CZ.02.1.01/0.0/0.0/16_019/0000843
Organisme : Grantová Agentura České Republiky
ID : 16-02316Y

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Auteurs

Jan Lukášek (J)

Department of Nanomaterials in Natural Science, Institute for Nanomaterials, Advanced Technologies and Innovation, Technical University of Liberec, Studentská 1402/2, 461 17 Liberec, Czech Republic. jan.lukasek@tul.cz.
Institute of New Technologies and Applied Informatics, Faculty of Mechatronics, Informatics and Interdisciplinary Studies, Technical University of Liberec, Studentská 1402/2, 461 17 Liberec, Czech Republic. jan.lukasek@tul.cz.

Šárka Hauzerová (Š)

Department of Nonwovens and Nanofibrous Materials, Faculty of Textile Engineering, Technical University of Liberec, Studentská 1402/2, 461 17 Liberec, Czech Republic. sarka.hauzerova@tul.cz.

Kristýna Havlíčková (K)

Department of Nonwovens and Nanofibrous Materials, Faculty of Textile Engineering, Technical University of Liberec, Studentská 1402/2, 461 17 Liberec, Czech Republic. kristyna.havlickova@tul.cz.

Kateřina Strnadová (K)

Department of Nonwovens and Nanofibrous Materials, Faculty of Textile Engineering, Technical University of Liberec, Studentská 1402/2, 461 17 Liberec, Czech Republic. katerina.strnadova@tul.cz.

Karel Mašek (K)

Department of Surface and Plasma Science, Faculty of Mathematics and Physics, Charles University, V Holešovičkách 2, 180 00 Prague 8, Czech Republic. karel.masek@mff.cuni.cz.

Martin Stuchlík (M)

Department of Nanomaterials in Natural Science, Institute for Nanomaterials, Advanced Technologies and Innovation, Technical University of Liberec, Studentská 1402/2, 461 17 Liberec, Czech Republic. martin.stuchlik@tul.cz.

Ivan Stibor (I)

Department of Nanomaterials in Natural Science, Institute for Nanomaterials, Advanced Technologies and Innovation, Technical University of Liberec, Studentská 1402/2, 461 17 Liberec, Czech Republic. ivan.stibor@tul.cz.

Věra Jenčová (V)

Department of Chemistry, Faculty of Science, Humanities and Education, Technical University of Liberec, Studentská 1402/2, 461 17 Liberec, Czech Republic. vera.jencova@tul.cz.

Michal Řezanka (M)

Department of Nanomaterials in Natural Science, Institute for Nanomaterials, Advanced Technologies and Innovation, Technical University of Liberec, Studentská 1402/2, 461 17 Liberec, Czech Republic. michal.rezanka@tul.cz.

Classifications MeSH