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物理化学和细胞条件对塑性压缩胶原水凝胶骨修复潜力的作用

Role of Physico-Chemical and Cellular Conditions on the Bone Repair Potential of Plastically Compressed Collagen Hydrogels.

作者信息

Mbitta Akoa Daline, Sicard Ludovic, Hélary Christophe, Torrens Coralie, Baroukh Brigitte, Poliard Anne, Coradin Thibaud

机构信息

Sorbonne Université, CNRS, Laboratoire de Chimie de la Matière Condensée de Paris, 75005 Paris, France.

Université de Paris, UR2496 Pathologies, Imagerie et Biothérapies Orofaciales, FHU-DDS-Net, Dental School, 92120 Montrouge, France.

出版信息

Gels. 2024 Feb 6;10(2):130. doi: 10.3390/gels10020130.

Abstract

Since their first description nearly 20 years ago, dense collagen hydrogels obtained by plastic compression have become popular scaffolds in tissue engineering. In particular, when seeded with dental pulp stem cells, they have demonstrated a great in vivo potential in cranial bone repair. Here, we investigated how physico-chemical and cell-seeding conditions could influence the formation and in vitro mineralization of these cellularized scaffolds. A qualitative assessment demonstrated that the gel stability before and after compression was highly sensitive to the conditions of fibrillogenesis, especially initial acid acetic and buffer concentrations. Gels with similar rheological properties but different fibrillar structures that exhibited different stabilities when used for the 3D culture of Stem cells from Human Exfoliated Deciduous teeth (SHEDs) could be prepared. Finally, in our optimal physico-chemical conditions, mineralization could be achieved only using human dental pulp stem cells (hDPSCs) at a high cell density. These results highlight the key role of fibrillogenic conditions and cell type/density on the bone repair potential of cell-laden plastically compressed collagen hydrogels.

摘要

自近20年前首次被描述以来,通过塑性压缩获得的致密胶原蛋白水凝胶已成为组织工程中常用的支架材料。特别是,当接种牙髓干细胞时,它们在颅骨修复方面显示出巨大的体内潜力。在此,我们研究了物理化学和细胞接种条件如何影响这些细胞化支架的形成和体外矿化。定性评估表明,压缩前后凝胶的稳定性对原纤维形成条件高度敏感,尤其是初始乙酸和缓冲液浓度。可以制备具有相似流变学性质但不同原纤维结构的凝胶,这些凝胶在用于人脱落乳牙干细胞(SHEDs)的三维培养时表现出不同的稳定性。最后,在我们的最佳物理化学条件下,只有使用高细胞密度的人牙髓干细胞(hDPSCs)才能实现矿化。这些结果突出了原纤维形成条件以及细胞类型/密度对负载细胞的塑性压缩胶原蛋白水凝胶骨修复潜力的关键作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/995b/10887598/3d698250a0e8/gels-10-00130-g001.jpg

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