Chitosan Composites with Bacterial Cellulose Nanofibers Doped with Nanosized Cerium Oxide: Characterization and Cytocompatibility Evaluation

Author:

Petrova Valentina A.1,Gofman Iosif V.1ORCID,Dubashynskaya Natallia V.1ORCID,Golovkin Alexey S.2ORCID,Mishanin Alexander I.2ORCID,Ivan’kova Elena M.1ORCID,Romanov Dmitry P.3,Khripunov Albert K.1,Vlasova Elena N.1,Migunova Alexandra V.4,Baranchikov Alexander E.5ORCID,Ivanov Vladimir K.5ORCID,Yakimansky Alexander V.1,Skorik Yury A.1ORCID

Affiliation:

1. Institute of Macromolecular Compounds of the Russian Academy of Sciences, Bolshoi VO 31, St. Petersburg 199004, Russia

2. Almazov National Medical Research Centre, Akkuratova 2, St. Petersburg 197341, Russia

3. Institute of Silicate Chemistry of the Russian Academy of Sciences, Adm. Makarova emb. 2, St. Petersburg 199034, Russia

4. Department of Microbiology, Faculty of Biology, St. Petersburg State University, Universitetskaya emb. 7-9, St. Petersburg 199034, Russia

5. Kurnakov Institute of General and Inorganic Chemistry of the Russian Academy of Sciences, Leninskii 31, Moscow 119071, Russia

Abstract

In this work, new composite films were prepared by incorporating the disintegrated bacterial cellulose (BCd) nanofibers and cerium oxide nanoparticles into chitosan (CS) matrices. The influence of the amount of nanofillers on the structure and properties of the polymer composites and the specific features of the intermolecular interactions in the materials were determined. An increase in film stiffness was observed as a result of reinforcing the CS matrix with BCd nanofibers: the Young’s modulus increased from 4.55 to 6.3 GPa with the introduction of 5% BCd. A further increase in Young’s modulus of 6.7 GPa and a significant increase in film strength (22% increase in yield stress compared to the CS film) were observed when the BCd concentration was increased to 20%. The amount of nanosized ceria affected the structure of the composite, followed by a change in the hydrophilic properties and texture of the composite films. Increasing the amount of nanoceria to 8% significantly improved the biocompatibility of the films and their adhesion to the culture of mesenchymal stem cells. The obtained nanocomposite films combine a number of favorable properties (good mechanical strength in dry and swollen states, improved biocompatibility in relation to the culture of mesenchymal stem cells), which allows us to recommend them for use as a matrix material for the culture of mesenchymal stem cells and wound dressings.

Funder

Russian Science Foundation

Publisher

MDPI AG

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis

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