Autor: |
Später, Thomas, Mariyanats, Aleksandra O., Syachina, Maria A., Mironov, Anton V., Savelyev, Alexander G., Sochilina, Anastasia V., Menger, Michael D., Vishnyakova, Polina A., Kananykhina, Evgeniya Y., Fatkhudinov, Timur Kh., Sukhikh, Gennady T., Spitkovsky, Dmitry D., Katsen-Globa, Alisa, Laschke, Matthias W., Popov, Vladimir K. |
Zdroj: |
ACS Biomaterials Science & Engineering; October 2020, Vol. 6 Issue: 10 p5744-5757, 14p |
Abstrakt: |
In this study, we prepared hydrogel scaffolds for tissue engineering by computer-assisted extrusion three-dimensional (3D) printing with photocured (λ = 445 nm) hyaluronic acid glycidyl methacrylate (HAGM). The developed product was compared with the polylactic-co-glycolic acid (PLGA) scaffolds generated by means of the original antisolvent 3D printing methodology. The cytotoxicity and cytocompatibility of the scaffolds were analyzed in vitroby 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide tests, flow cytometry, and scanning electron microscopy. Anti-inflammatory and proangiogenic properties of the scaffolds were evaluated in the dorsal skinfold chamber mouse model by means of intravital fluorescence microscopy, histology, and immunohistochemistry throughout an observation period of 14 days. In vitro, none of the scaffolds revealed cytotoxicity on days 1, 2, and 5 after seeding with umbilical cord-derived multipotent stromal cells, and the primary cell adhesion to the surface of HAGM scaffolds was low. In vivo, implanted HAGM scaffolds showed enhanced vascularization and host tissue ingrowth, and the inflammatory response to them was less pronounced compared with PLGA scaffolds. The results indicate excellent biocompatibility and vascularization capacity of the developed 3D printed HAGM scaffolds and position them as strong candidates for advanced tissue engineering applications. |
Databáze: |
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