Enhancing the biological characteristics of aminolysis surface-modified 3D printed nanocomposite polycaprolactone/nanohydroxyapatite scaffold via gelatin biomacromolecule immobilization: An in vitro and in vivo study

被引:1
|
作者
Farnaghi, Mohammadhasan [1 ]
Poursamar, Seyed Ali [1 ]
Farzan, Mahour [2 ]
Farzan, Mahan [3 ]
Kouhi, Monireh [4 ]
Rafienia, Mohammad [1 ,5 ]
机构
[1] Isfahan Univ Med Sci, Sch Adv Technol Med, Dept Biomat & Tissue Engn, Esfahan, Iran
[2] Shahrekord Univ Med Sci, Basic Hlth Sci Inst, Med Plants Res Ctr, Shahrekord, Iran
[3] Shahrekord Univ Med Sci, Student Res Comm, Shahrekord, Iran
[4] Isfahan Univ Med Sci, Dent Res Inst, Dent Mat Res Ctr, Sch Dent, Esfahan, Iran
[5] Isfahan Univ Med Sci, Biosensor Res Ctr, Esfahan, Iran
关键词
Polycaprolactone; Hydroxyapatite; Gelatin; Surface modification; Tissue engineering; TISSUE; POLY(CAPROLACTONE); FIBERS;
D O I
10.1016/j.colsurfb.2025.114505
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
The surface characteristics of scaffolds utilized in bone tissue engineering profoundly influence subsequent cellular response. This study investigated the efficacy of applying a gelatin coat to the surface of aminolysis surface-modified scaffolds fabricated through 3D printing with a polycaprolactone/hydroxyapatite nanocomposite, employing the hot-melt extrusion FDM technique. Initially, aminolysis surface modification using hexamethylenediamine enhanced surface hydrophilicity by introducing amine functional groups. Subsequently, gelatin solutions were applied to the scaffolds, and crosslinking with EDC/NHS was performed to increase coating strength. Contact angle measurements revealed a significantly increased surface hydrophilicity postaminolysis. Aminolysis facilitated uniform gelatin coating formation and distribution. Subsequently, crosslinking enhanced coating durability. The addition of gelatin coating resulted in a notable 20 % increase in scaffold mechanical strength and more than 50 % rise in Young's modulus and exhibited enhancement of biodegradability and bioactivity. Gelatin coated scaffolds also demonstrated improved cell viability and adhesion and over two times higher expression of OPN and ALP genes, suggesting improved biological properties. In addition, in vivo bone formation studies verified the biological enhancement of scaffolds. Utilizing an immobilized crosslinked gelatin biomacromolecule coating effectively enhanced the biological characteristics of 3D printed scaffolds and their potential applications as bone tissue engineering scaffolds.
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页数:19
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