Recent studies, which aim to optimize maxillary sinus augmentation, have paid significant attention exploring osteogenic potential of maxillary Schneiderian sinus membrane-derived cells (MSSM-derived cells). However, it remains unclear that how MSSM-derived cells could respond to niche's biomechanical properties. Herein, this study investigated the possible effects of substrate stiffness on rMSSM-derived stem cell fate. Initially, rMSSM-derived stem cells with multiple differentiation potential were successfully obtained. We then fabricated polyacrylamide substrates with varied stiffness ranging from 13 to 68âkPa to modulate the mechanical environment of rMSSM-derived stem cells. A larger cell spreading area and increased proliferation of rMSSM-derived stem cells were found on the stiffer substrates. Similarly, cells became more adhesive as their stiffness increased. Furthermore, the higher stiffness facilitated osteogenic differentiation of rMSSM-derived stem cells. Overall, our results indicated that increase in stiffness could mediate behaviors of rMSSM-derived stem cells, which may serve as a guide in future research to design novel biomaterials for maxillary sinus augmentation.
Stiffness Regulates the Morphology, Adhesion, Proliferation, and Osteogenic Differentiation of Maxillary Schneiderian Sinus Membrane-Derived Stem Cells.
刚度调节上颌窦膜衍生干细胞的形态、粘附、增殖和成骨分化
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作者:Liu Yiping, Wang Jia, Zhai Peisong, Ren Sicong, Wang Zhanqi, Peng Peixuan, Du Liuyi, Li Lisha, Zhang Yidi, Zhou Yanmin
| 期刊: | Stem Cells International | 影响因子: | 3.300 |
| 时间: | 2021 | 起止号: | 2021 Jul 8; 2021:8868004 |
| doi: | 10.1155/2021/8868004 | 研究方向: | 发育与干细胞、细胞生物学 |
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