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Description of D-glucosamine immobilization kinetics onto poly(lactic acid) surface via a multistep physicochemical approach for preparation of novel active biomaterials

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dc.title Description of D-glucosamine immobilization kinetics onto poly(lactic acid) surface via a multistep physicochemical approach for preparation of novel active biomaterials en
dc.contributor.author Swilem, Ahmed E.
dc.contributor.author Lehocký, Marián
dc.contributor.author Humpolíček, Petr
dc.contributor.author Kuceková, Zdenka
dc.contributor.author Novák, Igor
dc.contributor.author Mičušík, Matěj
dc.contributor.author Abd El-Rehim, Hassan A.
dc.contributor.author Hegazy, El-Sayed A.
dc.contributor.author Hamed, Ashraf A.
dc.contributor.author Kousal, Jaroslav
dc.relation.ispartof Journal of Biomedical Materials Research - Part A
dc.identifier.issn 1549-3296 Scopus Sources, Sherpa/RoMEO, JCR
dc.date.issued 2017
utb.relation.volume 105
utb.relation.issue 11
dc.citation.spage 3176
dc.citation.epage 3188
dc.type article
dc.language.iso en
dc.publisher John Wiley and Sons Inc.
dc.identifier.doi 10.1002/jbm.a.36158
dc.relation.uri http://onlinelibrary.wiley.com/doi/10.1002/jbm.a.36158/full
dc.subject poly(lactic acid) en
dc.subject plasma post-irradiation grafting en
dc.subject d-glucosamine en
dc.subject immobilization en
dc.subject cell proliferation en
dc.description.abstract Poly(lactic acid) (PLA) has shown much success in the preparation of tissue engineering scaffolds as it can be fabricated with a tailored architecture. However, the PLA surface has drawbacks including the lack of biofunctional motifs which are essential for high affinity to biological cells. Therefore, this study describes a multistep physicochemical approach for the immobilization of d-glucosamine (GlcN), a naturally occurring monosaccharide having many biological functions, on the PLA surface aiming at enhancing the cell proliferation activity. In this approach, poly(acrylic acid) (PAAc) spacer arms are first introduced into the PLA surface via plasma post-irradiation grafting technique. Then, covalent coupling or physical adsorption of GlcN with/on the PAAc spacer is carried out. Factors affecting the grafting yield are controlled to produce a suitable spacer for bioimmobilization. X-ray photon spectroscopic (XPS) analyses confirm the immobilization of GlcN on the PLA surface. The XPS results reveal also that increasing the yield of grafted PAAc spacer on the PLA surface increases the amount of covalently immobilized GlcN, but actually inhibits the immobilization process using the physical adsorption method. Contact angle measurements and atomic force microscopy (AFM) show a substantial increase of surface energy and roughness of PLA surface, respectively, upon the multistep modification procedure. The cytocompatibility of the modified surfaces is assessed using a mouse embryonic fibroblast (MEF) cell line. Observation from the cell culture basically demonstrates the potential of GlcN immobilization in improving the cytocompatibility of the PLA surface. Moreover, the covalent immobilization of GlcN seems to produce more cytocompatible surfaces if compared with the physical adsorption method. © 2017 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 105A: 3176–3188, 2017. © 2017 Wiley Periodicals, Inc. en
utb.faculty University Institute
dc.identifier.uri http://hdl.handle.net/10563/1007535
utb.identifier.obdid 43877154
utb.identifier.scopus 2-s2.0-85029523953
utb.identifier.wok 000411867800026
utb.identifier.pubmed 28707422
utb.identifier.coden JBMRC
utb.source j-scopus
dc.date.accessioned 2018-01-15T16:31:24Z
dc.date.available 2018-01-15T16:31:24Z
dc.description.sponsorship MHE, Ministry of Higher Education, Egypt
dc.description.sponsorship Czech Science Foundation [17-10813 S]; Ministry of Education, Youth and Sports (Czech Republic); Ministry of Higher Education (Egypt)
utb.ou Centre of Polymer Systems
utb.contributor.internalauthor Swilem, Ahmed E.
utb.contributor.internalauthor Lehocký, Marián
utb.contributor.internalauthor Humpolíček, Petr
utb.contributor.internalauthor Kuceková, Zdenka
utb.fulltext.affiliation Ahmed E. Swilem,1,2, Marian Lehocký 1, Petr Humpolíček 1, Zdenka Kucekova 1, Igor Novak 3, Matej Mičušík 3, Hassan A. Abd El-Rehim 4, El-Sayed A. Hegazy 4, Ashraf A. Hamed 2, Jaroslav Kousal 5 1 Centre of Polymer Systems, Tomas Bata University in Zlín, Trida Tomase Bati 5678, Zlín 760 01, Czech Republic 2 Department of Chemistry, Faculty of Science, Ain Shams University, Abbassia, Cairo 11566, Egypt 3 Polymer Institute, Slovak Academy of Sciences, Dubravsk a cesta 9, Bratislava, Slovakia 845 41 4 Department of Polymers, National Center for Radiation Research and Technology, Atomic Energy Authority, Nasr City, Cairo 11371, Egypt 5 Faculty of Mathematics and Physics, Charles University Prague, V Holesovickach 2, Prague 8, 18000, Czech Republic
utb.fulltext.dates Received 21 April 2017 revised 6 June 2017 accepted 28 June 2017
utb.scopus.affiliation Centre of Polymer Systems, Tomas Bata University in Zlín, Trida Tomase Bati 5678, Zlín, Czech Republic; Department of Chemistry, Faculty of Science, Ain Shams University, Abbassia, Cairo, Egypt; Polymer Institute, Slovak Academy of Sciences, Dúbravská cesta 9, Bratislava, Slovakia; Department of Polymers, National Center for Radiation Research and Technology, Atomic Energy Authority, Nasr City, Cairo, Egypt; Faculty of Mathematics and Physics, Charles University Prague, V Holesovickach 2, Prague 8, Czech Republic
utb.fulltext.faculty University Institute
utb.fulltext.faculty University Institute
utb.fulltext.faculty University Institute
utb.fulltext.faculty University Institute
utb.fulltext.ou Centre of Polymer Systems
utb.fulltext.ou Centre of Polymer Systems
utb.fulltext.ou Centre of Polymer Systems
utb.fulltext.ou Centre of Polymer Systems
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