In vitro characterization of 3D printed polycaprolactone/graphene oxide scaffolds impregnated with alginate and gelatin hydrogels for bone tissue engineering

被引:0
作者
Amini-Mosleh-Abadi, Shaghayegh [1 ]
Yazdanpanah, Zahra [2 ]
Ketabat, Farinaz [2 ]
Saadatifar, Mahya [1 ]
Mohammadi, Mohammad [1 ]
Salimi, Nima [1 ]
Nejhad, Azade Asef [1 ]
Sadeghianmaryan, Ali [1 ,2 ,3 ]
机构
[1] Islamic Azad Univ, Dept Biomed Engn, Sci & Res Branch, Tehran, Iran
[2] Univ Saskatchewan, Coll Engn, Div Biomed Engn, Saskatoon, SK, Canada
[3] Univ Memphis, Dept Biomed Engn, Memphis, TN USA
关键词
Three-dimensional printing; bone scaffold; impregnation; polycaprolactone; graphen oxide; alginate; gelatin; GRAPHENE OXIDE; PORE-SIZE; COMPOSITE SCAFFOLDS; FABRICATION; PERFORMANCE;
D O I
10.1177/08853282251336552
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
To achieve successful bone tissue engineering (BTE), it is necessary to fabricate a biomedical scaffold with appropriate structure as well as favorable composition. Despite a broad range of studies, this remains a challenge, highlighting the need for a better understanding of how structural features (e.g., pore size) and scaffold composition influence mechanical and physical properties, as well as cellular behavior. Therefore, the objective of this study was to characterize physical properties (swelling, degradation), mechanical properties (compressive modulus), and cellular behavior in relation to varying compositions (referred to composite and hybrid scaffolds) as well as varying pore sizes in three-dimensional (3D) printed scaffolds. Composite scaffolds were fabricated from polycaprolactone (PCL) and two different graphene oxide (GO) (3% and 9% (w/v)) concentrations. Additionally, hybrid scaffolds were fabricated by impregnating 3D printed scaffolds in a hydrogel blend of alginate/gelatin. Pore sizes of 400, 1000, and 1500 mu m were investigated in this study to assess their effect on the scaffold properties. Our findings showed that swelling and degradation properties were enhanced by (I) the addition of GO as well as introduction of both hydrogel and highest concentration of GO (9% (w/v) GO) into the polymeric matrix of PCL, and (II) increasing the pore size within the scaffolds. Mechanical testing revealed that compressive elastic modulus increased with decreasing pore size, incorporation of GO, and increasing GO content into the matrix of PCL. Although our investigated scaffolds with various pore sizes did not show comparable elastic moduli to that of cortical bone, they exhibited an elastic modulus range (similar to 31-48 MPa) matching that of trabecular bone. The highest compressive modulus (similar to 48 MPa) was observed in scaffolds of PCL/9% (w/v) GO (composite scaffolds) with the pore size of 400 mu m. Cell viability assay demonstrated high MG-63 cell survival (greater than 70%) in all composite and hybrid scaffolds (indicating scaffold biocompatibility) except PCL/3% (w/v) GO scaffolds. The findings of this study contribute to the field of BTE by providing scaffold design insights in terms of pore size and composition.
引用
收藏
页码:374 / 388
页数:15
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