Electrospun Composites of Chitosan with Cerium Oxide Nanoparticles for Wound Healing Applications: Characterization and Biocompatibility Evaluation In Vitro and In Vivo

Author:

Petrova Valentina A.1,Poshina Daria N.1ORCID,Golovkin Alexey S.2ORCID,Mishanin Alexander I.2ORCID,Zhuravskii Sergei G.3,Yukina Galina Y.4,Naumenko Maria Y.3,Sukhorukova Elena G.4,Savin Nikita A.5ORCID,Erofeev Alexander S.5,Gofman Iosif V.1ORCID,Ivan’kova Elena M.1ORCID,Dubashynskaya Natallia V.1ORCID,Yakimansky Alexander V.1,Skorik Yury A.1ORCID

Affiliation:

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

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

3. Hearing and Speech Laboratory, Pavlov First Saint Petersburg State Medical University, L’va Tolstogo 6-8, 197022 St. Petersburg, Russia

4. Laboratory of Pathomorphology, Pavlov First Saint Petersburg State Medical University, L’va Tolstogo 6-8, 197022 St. Petersburg, Russia

5. Laboratory of Biophysics, National University of Science and Technology “MISIS”, Leninsky 4, 119049 Moscow, Russia

Abstract

Cerium oxide nanoparticles (CeONPs), as part of tissue regeneration matrices, can protect cells from reactive oxygen species and oxidative stress. In addition, they can influence the properties of the scaffold, including its electrospinnability and mechanical strength. In this work, we prepared electrospun fiber mats from a chitosan and polyethylene oxide blend (CS-PEO) with the addition of ceria nanoparticles (CS-PEO-CeONP). The addition of CeONPs resulted in a smaller fiber diameter and higher swelling compared to CS-PEO fiber mats. CeONP-modified fiber mats also had a higher Young’s modulus due to the reinforcing effect of the nanoparticles. Both mats had comparable adhesion and cytocompatibility to mesenchymal stem cells, which had a more rounded morphology on CS-PEO-CeONP compared to elongated cells on the CS-PEO mats. Biocompatibility in an in vivo rat model showed no acute toxicity, no septic or allergic inflammation, and no rough scar tissue formation. The degradation of both mats passed the stage of matrix swelling. CS-PEO-CeONP showed significantly slower biodegradation, with most of the matrix remaining in the tissue after 90 days. The reactive inflammation was aseptic in nature with the involvement of multinucleated foreign-body type giant cells and was significantly reduced by day 90. CeONPs induced the formation of the implant’s connective tissue capsule. Thus, the introduction of CeONPs influenced the physicochemical properties and biological activity of CS-PEO nanofiber mats.

Funder

Russian Science Foundation

Publisher

MDPI AG

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