The severity of rotator cuff injury outcomes and a lack of tendon-to-bone enthesis regeneration strategies have inspired advances in biomaterials science to develop methods for interfacial tissue engineering. Here, we demonstrate a triphasic biomaterial comprising a non-mineralized, anisotropic collagen scaffold and a mineralized isotropic collagen scaffold linked via a continuous thiolated gelatin (Gel-SH) interface. This material provides a stratified environment in composition and porous architecture, and we report functional activity of human mesenchymal stem cells (hMSCs) across the scaffold. Notably, MSCs can be seeded onto the triphasic biomaterial and remain viable for up to 21 days. In addition, MSCs within the interfacial Gel-SH interfacial zone express markers associated with the rotator cuff fibrocartilaginous enthesis, including gene upregulation of COL1A1, COL3A1, SOX9, BMP4, TGFβ1 and functional secretion of TGF-β1. Altogether, these findings suggest that this triphasic scaffold design could create a permissive environment for fibrochondrogenic activity in support of eventual enthesis interfacial tissue engineering applications.
Mesenchymal stem cell activity across a graded scaffold-hydrogel composite biomaterial for tendon-to-bone enthesis repair.
间充质干细胞在梯度支架-水凝胶复合生物材料中对肌腱-骨连接修复的活性
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作者:Timmer Kyle B, Killian Megan L, Harley Brendan A C
| 期刊: | Bioactive Materials | 影响因子: | 20.300 |
| 时间: | 2025 | 起止号: | 2025 Jul 15; 53:287-299 |
| doi: | 10.1016/j.bioactmat.2025.07.017 | 研究方向: | 发育与干细胞、细胞生物学 |
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