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Electron beam irradiation as a straightforward way to produce tailorable non-biofouling poly(2-methyl-2-oxazoline) hydrogel layers on different substrates

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    0570915 - ÚMCH 2024 RIV NL eng J - Journal Article
    Šrámková, P. - Kučka, Jan - Kroneková, Z. - Lobaz, Volodymyr - Šlouf, Miroslav - Mičušík, M. - Šepitka, J. - Kleinová, A. - Chorvát, D. - Mateášik, A. - Hrubý, Martin - Kronek, J.
    Electron beam irradiation as a straightforward way to produce tailorable non-biofouling poly(2-methyl-2-oxazoline) hydrogel layers on different substrates.
    Applied Surface Science. Roč. 625, 15 July (2023), č. článku 157061. ISSN 0169-4332. E-ISSN 1873-5584
    R&D Projects: GA ČR(CZ) GA21-01090S; GA MŠMT(CZ) LO1507; GA MŠMT(CZ) LM2023053; GA MZd(CZ) NU20-06-00424
    Grant - others:AV ČR(CZ) StrategieAV21/26
    Program: StrategieAV
    Institutional support: RVO:61389013
    Keywords : poly[(2-methyl-2-oxazoline)-co-(2-(3-butenyl)-2-oxazoline)] * hydrogel coating * electron beam radiation
    OECD category: Polymer science
    Impact factor: 6.7, year: 2022
    Method of publishing: Limited access
    https://www.sciencedirect.com/science/article/pii/S0169433223007389?via%3Dihub

    Uncontrolled accumulation of proteins and cells on implantable materials often leads to failure of their performance in vivo. The idea presented in this paper is the use of electron beam irradiation as a widely applicable, cost-effective, and defined method to produce non-biofouling hydrogel coatings to improve the biocompatibility and in vivo performance of implantable materials. Statistical copolymers poly[2-methyl-2-oxazoline-co-2-(3-butenyl)-2-oxazoline]s were deposited on different substrates and irradiated with beta radiation of different radiation doses (2–100 kGy). In the bulk state experiments, we found that the higher content of crosslinkable 3-butenyl units and a higher radiation dose resulted in more efficient crosslinking. Similarly, the irradiation of coatings demonstrated the high impact of the concentration of 3-butenyl units on crosslinking efficiency. Accordingly, the concentration of crosslinkable double bonds in the copolymer is crucial for the stability and homogeneity of the formed hydrogel layer. Stable and uniform hydrogel layers with thicknesses in the micrometer range were prepared from a 5 wt% copolymer solution. Depending on the preparation conditions, the hydrogel layers showed excellent non-biofouling properties with a low number of adherent cells. In addition, stiffness was dependent on the degree of crosslinking, and can thus be tailored for specific application in living tissue.
    Permanent Link: https://hdl.handle.net/11104/0343004

     
     
Number of the records: 1  

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